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Monday, January 21, 2013

FSP's fake CV contest

Sorry about the blogging lull.  More to come soon.

In the meantime, this is hilarious, distressing, and insightful in equal portions.  I encourage you to read each one (and the comments). 

Friday, January 11, 2013

Black holes, information, and "fire walls"

It's not my area, but I always take notice when part of the physics community is abuzz about a thought experiment that seems to expose flaws in our understanding.  At issue is whether something dramatic (involving quantum gravitational effects) takes place at the event horizon of a black hole, from the point of view of an infalling observer.  Way back when I took a general relativity course, I learned that, because of the way spacetime works, the more massive the black hole, the more mild the actual curvature of spacetime at the horizon.  Tiny blackholes = tightly curved spacetime at the horizon; galactic-mass blackholes = nearly flat spacetime at the horizon.  (The horizon is the location where, in the usual Schwarzchild treatment, the sign of the metric components flips; that's another way of saying that once you cross the horizon, classically you are inevitably going to hit the singularity.  Avoiding it is mathematically as hard as avoiding next Tuesday in flat spacetime, as my professor had said.)  So, the old-school classical picture says, a freely falling observer can cross the event horizon and not even realize it.  Moreover, classically, an observer at rest relative to the black hole outside the horizon never actually sees anything cross the horizon - from such a perspective, a clock falling toward the horizon gets progressively more red-shifted and runs slower and slower, stopping altogether at the horizon after being infinitely red-shifted.

I freely admit that I don't understand Hawking radiation beyond a handwave level.  Still, I would be grateful if someone could explain to me, even more clearly than the article linked above, what the big deal is.  Arguments about entanglement across the horizon sound almost theological to me - if it's by definition impossible to check to see if measurements inside the horizon are quantum-correlated with measurements outside the horizon, then such discussions don't seem scientifically meaningful.  

Thursday, January 10, 2013

Workshop on Surface Plasmons, Metamaterials, and Catalysis

Three of my colleagues and I are helping to organize a workshop at Rice University on May 20-22, 2013.  The goal of this ARO-sponsored workshop is to explore the opportunities for chemical catalysis arising from recent advances in the fields of metamaterials and plasmonics.  The workshop will bring together scientists from the disciplines of electrochemistry, catalysis, and plasmonics, which have not traditionally had a common platform.

Topics include:
  • The state of the art in plasmonics, metamaterials, and chemical catalysis
  • Areas of catalysis that could benefit from enhanced optical/electromagnetic concepts
  • Concepts for nanophotonic- and metamaterials-driven catalysis and heat generation
  • Surface nanoengineering to merge nanophotonics and catalysis
  • Quantum plasmonics
  • Hot electrons driving chemistry
  • Chemical sensing using nanophotonic and plasmonic concepts
  • Nanophotonic characterization of catalytic structures:  Where do the reactions happen, and how fast?
The deadline for abstract submission is Feb. 14, 2013, and space is limited.  The workshop website is here:  http://PlasEnhCat2013.rice.edu  .

Please feel free to distribute this information to people that would be interested!

Saturday, January 05, 2013

Blogs as a way to deal with bad or fraudulent science

Thanks to a colleague, in addition to the controversy discussed here, I have been following closely the saga of science-fraud.org . That website, the content of which has now been taken down (but remains available through google's cache, if you know what you're doing), had been a clearing house where an anonymous primary poster (assisted by anonymous colleagues) reported on biomedical research papers that had what looked like some serious problems with image manipulation. For context, in that research area, a common tool is a Western Blot, where stained or tagged proteins are identified by the position of bands in digital images of electrophoresis gels. Because this data is basically shown in papers just as an image, it is ripe for manipulation by unscrupulous researchers with photoshop. While it might be ok to crank up the contrast, for example, it is definitely not ok to copy and paste sections of image, or erase inconvenient bands, or duplicate images from paper to paper and pretend that they are from different proteins. That site highlighted many many very suspicious images in the literature, and outright accused a number of bio researchers of fraud - the poster contacted the deans of many of these people, as well as their institutional research integrity officers and the national Office of Research Integrity.

That blogger has now been revealed as Paul Brookes, a scientist at the University of Rochester med center. His anonymity was broken when a very angry individual spammed a large number of relevant researchers with an email claiming the Brookes was responsible for that page, which the angry person (pseudonymous, ironically), claimed was a hate site. Brookes has come under serious legal threats; at issue is whether some of the posts were libelous, since they often went well beyond pointing out suspicious figures and directly accused people, in public and to their institutions and grant agencies, of deliberate research misconduct.

There are several lessons to draw from all this, as has been pointed out both by Brookes (in a post that he took down) and others.

  • There is a very serious problem with image manipulation out there in that community. It involves investigators and labs at some major places (as well as minor ones).
  • Anecdotally, it looks like some journal editors in this field are reluctant to look at this issue as closely as it needs.
  • Science-fraud.org did identify serious problems with a number of papers and prompted ORI investigations that uncovered research misconduct.
  • There does seem to be a communal need for a better means of identifying suspicious papers, and blogs could serve this role. I'm reluctant to take page views as a direct measure of that need, though - a lot of people click on articles about Kim Kardashian's pregnancy and the latest celebrity trainwrecks, but that doesn't mean that there is a need for those articles.
  • There really is no such thing as online anonymity. That's why I've never bothered to obscure my identity.
  • Do not post anything online or email anything that you would be ashamed to see on the front page of the New York Times.
  • Publicly accusing people of fraud is a serious business - it's not something that should be done without a lot of consideration of the consequences. The university's lawyers are also unlikely to protect a faculty member who makes public accusations like that without consulting them first.
  • It does make me wonder whether there are similar issues in the physical sciences on this scale.
On a related note, getting caught up on last year's news, I see that a Columbia economist involved in Freakonomics has somehow ended up with $240k in "lost" research money, and had to write a check to the university for $13k. Wow. I'm pretty sure that I would be fired if I couldn't account for $240k of research funds, and claiming that I just wasn't good at bookkeeping would be considered a laughable response.

All in all, a rather depressing roundup. Remember, it's this kind of fraud and poor behavior that just give ammunition to the anti-science parts of society.






Thursday, January 03, 2013

Ahh, poor journalism and high energy physics. Again.

Well, apparently I should just retire.  According to this article at the National Post, "Higgs boson discovery may signal the world’s last physics experiment as scientists struggle to come up with next big question". This isn't just a case of poor headline scripting by some editor. The article itself says:
What modern physics knows about the matter in the universe (better at the end of 2012 than the beginning) is that it is basically shrapnel, strange bits that endure from an ancient explosive nativity, known as the Big Bang. What Melissa Franklin knows about modern physics (likewise better than ever, or pretty much anyone) is that it is finished. Done. Kaput.
I am going to assume that this is just a case of poor journalism, and that Prof. Franklin, the chair of Harvard's physics department, does not really think that all of modern physics is encompassed by collider-based high energy work.

Wednesday, January 02, 2013

Review about quantum coherence

Happy 2013 to all!  The Proceedings of the Royal Society A has a special issue from this past fall about the issue of decoherence in quantum mechanics.  When last I looked, the content from this issue was free (!) for download.  I need to read through the rest of it, but I enjoyed Philip Stamp's article about decoherence and the possibility of intrinsic decoherence.  The point is, in ordinary quantum mechanics the state function of a quantum system evolves with time according to the Schroedinger equation, also called unitary time evolution.  However, that seems at odds with what happens when we perform measurements - in that situation, it seems like the state of the system "collapses" into an eigenstate of a measured observable, so that coherence appears to be lost, and we don't observed, e.g., Schroedinger's cat to be in a superposition of alive and dead.  The now standard treatment says that the apparent decoherence of a quantum system of interest when we "perform a measurement" results from  the coupling of the system with many environmental degrees of freedom (a "bath"), the states of which we then "trace over".  When we do this, looking only at the system, we see what looks like decoherence of the system, but the idea is that this is an approximation of the true situation, in which the whole system + environment is still obeying the Schroedinger equation.  (This skirts other aspects of the "measurement problem", like what really picks out the particular classical states that we seem to observe.)  Intrinsic decoherence would imply either that there is something genuinely wrong with unitary time evolution (i.e., quantum mechanics is incomplete), or there are environmental degrees of freedom out there in the very fabric of the universe that are impossible to avoid, such as the quantum degrees of freedom of curved spacetime itself.   

Thursday, December 20, 2012

Quantum spin liquids - neat stuff!

There is a new result in this week's issue of Nature that is very neat (and my college classmate Young Lee is the PI - small world!).  The experiment is an inelastic neutron scattering measurement that looks at a material with the unusual name herbertsmithite, and reports evidence that this material is a "quantum spin liquid".  I'll try to break down the physics here into reasonably accessible bite-sized chunks.

First, what is a spin liquid?  Imagine having a bunch of localized spins on a lattice.  You can picture these like little bar magnets.  In this case, the spins are the unpaired d electrons of the copper atoms in the herbertsmithite structure.   In general, the spins in a solid (this particular one is an insulator) "talk" to each other via the exchange interaction.  What this really means is that there are interactions between the spins so that the spins prefer a particular relative orientation to each other.  In this case, the interaction between the electron spins is antiferromagnetic, meaning that for spins on two neighboring Cu atoms, having the spins be oppositely directed saves some energy (17 meV) compared to having the spins aligned.  As the temperature is lowered, an ensemble of spins will tend to find whatever configuration minimizes the total energy (the ground state).  In a ferromagnet, that will be a state with the spins all aligned with their neighbors.  In a perfect antiferromagnet, that would be a state where the spins are all antialigned with their neighbors.  Both of these are ordered ground states, in that there is some global arrangement of the spins (with a particular symmetry) that wins at T = 0.   The problem in herbertsmithite is, because of the spatial arrangement of the Cu atoms (in a Kagome lattice), it's impossible to have every spin antialigned with all of its neighbors.  This is an example of geometric frustration.   As a result, even as T gets very low, it would appear that the spins in herbertsmithite never order, even though they interact with their neighbors very strongly.  This is an analog to the liquid state, where the molecules of a liquid clearly interact very strongly with their neighbors (they bump right into each other!), but they do not form a spatially ordered arrangement (that would be a solid).

Why a quantum spin liquid?  Two reasons.  First, I cheated in my description above.  While we can talk classically about antialigned spins, we really should say that pairs of spins want to form singlets, meaning quantum mechanically entangled antialigned states with net spin zero.  So, you can think of this spin liquid state as involving a big entangled mess of spins, where each spin is somehow trying to be entangled in a singlet state with each of its nearest neighbors.  This is very complicated to treat theoretically.  Second, the fluctuations that dominate in this situation are quantum fluctuations, rather than thermally driven fluctuations.  Quantum fluctuations will persist all the way down to T = 0. 

What's special about a quantum spin liquid?  Well, the low energy excitations of a quantum spin liquid can be very weird.  If you imagine reaching into the material and flipping one spin so that it's now energetically "unhappy" in terms of its neighbors, what you find is that you can start flipping spins and end up with "spinon" excitations that travel through the material, having spin-1/2 but no charge, and other exotic properties.  This is described reasonably well here.  Importantly, these excitations have effects that are seen in measurable properties, like heat capacity and how the system can take up and lose energy.

So what did the experimenters do?  They grew large, very pure single crystals of herbertsmithite, and fired neutrons at them.  Knowing the energies and momenta of the incident neutrons, and measuring the energies and momenta of the scattered neutrons, they were able to map out the properties of the excitations, showing that they really do look like what one expects for a quantum spin liquid. 

Why should you care?  This is a great example of seeing exotic properties (like these weird spin excitations) that emerge because of the collective response of a large number of particles.  A single Cu ion or unit cell of the crystal doesn't do this stuff - you need lots of spins.  Moreover, this is now a system where we can study what this weird, highly quantum-entangled does - I think it's very very far from practical applications, but you never know.   Looks like a very nice piece of work.

Tuesday, December 18, 2012

Just how self-correcting is science?

In an extremely timely article in the new issue of American Scientist, Joseph Grcar looks at what fraction of publications in various disciplines are basically corrective (that is, comments, corrigenda,  corrections, retractions, or refutations).  He finds in the sciences in general the correction rate is about 1-1.5% of publications.  This is probably a bit of an underestimate, in my view, since there are new works published that are essentially soft refutations that may not be detected by the methods used here.  Likewise, some fraction of the body of published work (constituting the denominator of that fraction) has no impact (in the sense of never being cited).  Still, that's an interesting number to see. 

Friday, December 14, 2012

A nano controversy

A couple of my colleagues pointed me to this blog, that of  Raphaël Lévy at Liverpool.  Lately it has become a clearing house for information about a particular controversy in nanoscale science, the question of "stripy nanoparticles".  The ultrashort version of the story:  Back in 2004, Francesco Stellacci (then at MIT, now in Switzerland) published a paper in Nature Materials arguing that his group had demonstrated something quite interesting and potentially useful.  Very often when solution-based materials chemistry is used to synthesize nanoparticles, the nanoparticles end up coated in a monolayer of some molecule (a ligand).  These ligands can act as surfactants to alter the kinetics of growth, but their most important function is to help the nanoparticles remain in suspension by preventing their aggregation (or one of my favorite science terms, flocculation).  Anyway, Stellacci and company used two different kinds of ligand molecules, and claimed that they had evidence that the ligands spontaneously phase-segregated on the nanoparticle surface into parallel stripes.  His group has gone on to publish many papers in high impact journals on these "stripy" particles.  

However, it is clear from the many posts on Lévy's blog, to say nothing of the paper published in Small, that this claim is controversial.  Basically those who disagree with Stellacci's interpretation argue that the scanned probe images that apparently show stripes are in fact displaying a particular kind of imaging artifact.  As an AFM or STM tip is scanned over a surface, feedback control is used to maintain some constant conditions (e.g., constant AFM oscillation frequency or amplitude; constant STM tunneling current).  If the feedback isn't tuned properly, there can be "ringing" so that the image shows oscillatory features as a function of time (and therefore tip position).  

I have no stake in this, though I have to say that the arguments and images shown by the skeptics are pretty persuasive.  I'd have to dig through Stellacci's counterarguments and ancillary experiments, but this doesn't look great.

This whole situation does raise some interesting questions, though.  Lévy points out that many articles seem to be published that take the assertion of stripiness practically on faith or on very scant evidence.  Certainly once there is a critical mass of published literature in big journals claiming some effect, it can be hard as a reviewer to argue that that body of work is all wrong.  Still, if you see (a series of) results in the literature that you really think are incorrectly interpreted, what it is the appropriate way to handle something like this?  Write a "comment" in each of these journals?  How should journals respond to concerns like this?  I do know that editors at high profile journals really don't like even reviewing "rebuttal" papers - they'd much rather have a "comment" or to let sleeping dogs lie.  Interesting stuff, nonetheless.

Update: To clarify, I am not taking a side here scientifically - in the long run, the community will settle these questions, particularly those of reproducibility.  Further, one other question raised here is the appropriate role of blogs.  They are an alternative way of airing scientific concerns (compared to the comment/rebuttal format), and that's probably a net good, but I don't think a culture of internet campaigns against research with which we disagree is a healthy limiting case.

Monday, December 03, 2012

The future of Si: Into the fog

Today we had a visit at Rice from Mike Mayberry, the VP for the Technology and Manufacturing group at Intel.  He gave a very good talk about where semiconductor electronics is going (naturally with the appropriate disclaimers that we shouldn't buy or sell stocks based on anything he said).  The general rule is that there is a metaphorical fog out there about ten years off, beyond which it's not clear what the industry will be doing or how it will be doing it.  However, for the comparatively near term, the path is fairly well known.  In short: complementary metal-oxide-semiconductor (CMOS) based on Si is going to continue for quite a ways longer.  Device design will continue toward improved electrostatic control of the channel - we will likely see evolution from tri-gate finFET structures toward full wrap-around gates.  We are firmly in the materials-limited regime of device performance, and Intel has been playing games with strain to improve charge mobility.  They have even experimented with integration of III-V materials via epitaxy onto Si platforms.  It's pretty clear that there is a healthy skepticism about post-CMOS alternative technologies, particularly given the absurdly low cost and high volumes of Si.  Intel ships something like 4 trillion transistors per minute (!).  Other remarkable facts/figures:  Network traffic right now is around 7 exabytes (1018 bytes) per day, or the equivalent of 17000 HD movies every second, including around 204 million emails per minute on gmail, and these numbers are increasing all the time.  Amazing.

Thursday, November 29, 2012

Ionic liquid gating - amazing results

I've mentioned ionic liquid gating a couple of times (here, here) before.  Ionic liquids are basically organic salts (molecular anion; molecular cation, though there are some that use, e.g., alkaline metal ions instead) that are liquid at room temperature.  The concept is simple enough:  use the ionic liquid as an electrolyte in a capacitor comprising a wire employed as a gate electrode and the surface of a sample of interest as the counterelectrode (helpfully contacted by source and drain electrodes).   Setting the bias of the gate relative to the surface drives the ions to move, building up (ionic) surface charge densities at the sample surface.   The material responds to screen what would otherwise be an enormous electric field penetrating the surface by accumulating mobile charge carriers of the appropriate species in a layer at the interface.  This approach, adopted by multiple groups, has been pushed hardest by the group of Iwasa.  The real advantage of this approach is that it allows access to electrostatically gated charge densities comparable to what can be achieved in chemical doping - on the order \( 10^{15} \) per cm2 in that top layer of material.  (This is the regime that He Who Shall Not Be Named fraudulently claimed to access, but this time it's real!)

Particular highlights have included:
A new paper appears in Science this week with yet another impressive result.  Iwasa's team has used ionic liquid gating to push an exfoliated flake of MoS2 into superconductivity.  Indeed, they see what looks a lot like a superconducting "dome" as a function of gated charge, with \(T_{c}\) actually decreasing above an optimal gated carrier density.   Wild.

The results just keep coming.  There are some real subtleties to the technique, though.  It's extremely important to make sure that the ionic liquid is really acting as a chemically inert electrolyte, and not inducing electrochemistry at the material surface or any other kind of chemical doping.

Anyway, this whole area is clearly one to watch in condensed matter.  Anytime you can push into a previously inaccessible regime, Nature tends to offer up surprises.

Wednesday, November 21, 2012

Tidbits

Now that a couple of papers are in and the never-ending list of tasks is getting shorter, hopefully blogging will pick back up. Here are a few interesting links for the (American) Thanksgiving holiday.

 

This is a paper about the subtleties and challenges of computational physics, meant to be very conversational and pedagogical for students. It was a fun read, and we should have more resources like this.

The Bad Astronomer has relocated to Slate.com. He did this just in time for the rampant speculation about NASA's pending chemistry results from the Curiosity rover. I don't think Curiosity actually killed a cat, but you never know.

The University of Houston just had a one-day symposium in honor of the twenty-fifth anniversary of the discovery of YBCO, the first superconductor with a transition temperature greater than the boiling point of liquid nitrogen. I wish I could've been there, but I had other commitments. My colleague tells me it was a very nicely done affair with many interesting talks and panel discussions. Now if only we could figure this out definitively....

It's always interesting to see a very thought-provoking paper from someone you take seriously. Miles Blencowe, a condensed matter/quantum measurement theorist at Dartmouth, argues that perturbative quantum gravity (a general approach to extending general relativity a bit into the quantum regime) can be a major source of decoherence of quantum superpositions of massive objects. This implies that the very quantum structure of spacetime acts dynamically to "collapse wavefunctions" in the language of the Copenhagen take on quantum mechanics. I need to read this more carefully.

 

 

Monday, November 12, 2012

Physics education, again.

This video is great at pointing out much of what is wrong with high school physics education in the US.  However, I find the implication that this is not that hard to fix to be a bit tough to swallow.  More later....

Wednesday, November 07, 2012

Things no one teaches you as part of your training.

Over the last couple of months I've been reflecting about some aspects of being an academic physicist, particularly what skills are important and what aspects of the job are never explicitly taught.  The training system that has evolved in the post-WWII US research universities is one that, when it works well, instills critical thinking, experimental or calculational design, and a large amount of (often rather narrow) scientific expertise.  Ancillary to this, doctoral students often (but not always) get indirect training in written and oral communications through the various papers and theses they write and the presentations that are made at conferences and dissertation defenses.  Often students gain some teaching experience, though many times this is in the form of the kind of TA work (running a lab section, grading problem sets) that is a far cry from actually planning out and lecturing a course.  Sometimes in the course of graduate or postdoctoral work, scholars are taught a bit about mentoring of younger students, but this is almost entirely informal.

However, there are many critical skills (relevant to eventual careers in both academia and industry) that get by-passed.   I'm not sure how you would actually teach these things in practice, and setting up courses to do so would widely be viewed as a waste of student time.  Still, it's interesting how much of being a good faculty member (or valued employee with managerial responsibilities) is never taught; it's just assumed that you pick this stuff up along the way somehow, or you are innately skilled.  Examples:
  • Managing students.  This includes: motivating students; determining what level of guidance is best suited to a particular student to instill independence and creativity yet avoid either aimless floundering or complete micromanagement; how to deal with personal, physical health or mental health problems; how to assess whether a student really has strong potential or an affinity for a particular project or set of skills.
  • Managing money.  No one ever tells you how to run a research group's finances.  No one ever explicitly sits you down and explains how the university's finances really work, what indirect costs really mean, how to deal with unanticipated financial issues, how to write a budget justification, how to stretch money as far as possible, how to negotiate with vendors, how the university accounting system works, how much responsibility to delegate to students/postdocs, how you may interact with the office of research accounting, how to do effort reporting.
  • Working with colleagues within the department and the university.  (actually, my department does a decent job at this through faculty mentoring, but most of that was put in place after I had been promoted already.)  How does university decision making work, what can the chair do, what do the deans do, what does the provost do.  Why are there so many university committees?  Do any of them do anything useful?  Are they just a refuge for people with too much free time, who like to argue for hours about whether "could" or "should" is the appropriate language for a policy?
  • Writing.  The only way people learn to write all of the really critical documents (papers, grant proposals, white papers, little blurbs for the department web page, group websites, etc.) is by doing.
  • Teaching.  At the modern research university, there is an assumption that you can pick up teaching.  This is widely considered insulting by serious education professionals, though there is truth to it - most people who are highly successful, communicative, organized scientists tend to be pretty good in the classroom, since good teaching requires good communications and organization capabilities (though also considerably more).
  • Time management.  No one teaches you how to budget your time, but if you can't do it reasonably well, you're really in trouble.  (For example, I should be writing three other things right now....)
Thoughts?  Anyone have any other examples of things we're expected to know but are never taught?  Suggested solutions to this problem?

Monday, October 29, 2012

back to blogging soon.

Just a quick note that I'm finally done w/ my NSF proposal, and I will be back to blogging about science soon.  One quick link for you all:  My faculty colleague (and general wise person) Neal Lane has a very nice editorial in today's NY Times about the importance of federal support for basic research.

A second fun link:  if you haven't seen this or this or this, you have been missing out on a great series of math videos by Vi Hart.  I want to grow up to be clever enough to make videos like this about condensed matter physics.

Thursday, October 18, 2012

"Everything you wanted to know about Data Analysis and Fitting but were afraid to ask"

This paper posted to the arxiv the other day provides a very readable, practical discussion of error analysis and curve fitting.  While I have not had the time to go through this in detail, at a quick read it looks like it is the sort of thing every physics student should know and use as a refresher. 

The point is, far too many people who really should know better never learn the right way to think about uncertainties or how to properly fit data.  For example, in the world of economics, some people actually think that the curve on this graph actually has some statistical significance.  (That's not a political statement - I'm laughing at their innumeracy.) 

Thursday, October 11, 2012

Condensed matter experimental position at Rice

Pardon the use of the blog for advertising, but it can only help broaden the reach of the ad:



The Department of Physics and Astronomy at Rice University invites applications for a tenure-track faculty position in experimental condensed matter physics.  The department expects to make an appointment at the assistant professor level. This search primarily seeks an outstanding individual whose emphasis is on neutron or x-ray spectroscopy of hard condensed matter systems, who will complement and extend existing experimental and theoretical activities in condensed matter physics (see http://physics.rice.edu/).  A PhD in physics or related field is required. Applicants should send a curriculum vitae, statements of research and teaching interests, a list of publications, and two or three selected reprints, in a single PDF file, to vcall@rice.edu with subject line “CME Search” or to  Prof. Douglas Natelson, Chair, Condensed Matter Search Committee, Dept. of Physics and Astronomy – MS 61, Rice University, 6100 Main Street, Houston, TX  77005.   Applicants should also arrange for at least three letters of recommendation to be sent by email or post.  Applications will be accepted until the position is filled, but only those received by December 1, 2012 will be assured full consideration.  The appointment is expected to start in July 2013.  Rice University is an affirmative action/equal opportunity employer; women and underrepresented minorities are strongly encouraged to apply.


On a tangentially related note, I encourage people who want to understand more about how the faculty job search process works to read my previous posts on the topic.  This is a good place to start, followed by this and this.  As commenter Charles Day pointed out, here is a Physics Today article freely available on this topic.



Wednesday, October 10, 2012

Bits and pieces

Several links to bide time while I try to write to many things.

Congratulations, of course, to this year's Nobel winners in physics! Great stuff, and it was lots of fun trying to give a simple explanation of the work to the freshmen in my class.

Grad student Barbie is a bit too on the nose.

It's become abundantly clear that the US House science committee is populated in part by people who are not just ignorant (like those who dont understand how biology works) some simply think that science itself is evil and literally a trick by the devil (!) to mislead them. Other people have pointed this out. This is just unacceptable. We deserve better. It's a damned disgrace that Congress actually rewards these people by placing them on a committee where their ignorance can formulate policy. I don't know how to fix it except by shaming them, and we all know that shaming the current House leadership is impossible. I'm close to having a Howard Beale moment here.

This was a cool nano physics story to hear on the way to work this morning.



Thursday, October 04, 2012

Science and its self-correcting nature.

Eight years ago, Moses Chan of Penn State made big news by publishing experimental evidence that appeared to be consistent with supersolidity - a hypothesized state in which atomic vacancies in a solid (in this case, pressurized crystals of 4He at very low temperatures) could move without dissipation, analogous to the quantum coherent, viscosity-free flow of atoms in a superfluid.  I've mentioned this before (1) (2).    Now, as written up in the latest issue of Science, it seems like supersolidity (at least in the system that had been studied) is dead, and a major killer was a paper by the original authors of the first claim. 

This happens sometimes.  Observations and their interpretation can seem very very compelling, and yet later someone will think of some subtle issue that had not been considered previously.  That's the nature of science.  Unfortunately, sometimes the popular impression that gets conveyed is that because of these rare situations, science is no more trustworthy than random guesses or opinions.  My own thesis advisor told me more than once that it's ok to be wrong in science occasionally, and the best outcome is to be the one who discovers your own mistake!  (He and coauthors had published a PRL claiming that an effect they saw was taking place in solid 3He, when it turned out that it really was happening in the liquid, which they then also published, correcting their own mistaken interpretation.  It worked out well for them.)

That reminds me:  time for the annual Nobel speculation, since the physics prize comes next Tuesday.  Place your bets below....  (blogging will continue to be slow due to multiple other writing constraints right now)

Thursday, September 27, 2012

More recent hot topics

Still working on proposals, so this will be brief.  However, as mentioned in my previous post, I did want to add in some topics/open questions that are fairly hot right now:
  • Topological insulators - These materials are nominally band insulators, in that they have a filled band of electronic states, an energy gap, and an empty conduction band.  However, unlike ordinary band insulators, these have an odd number of states that live at their surface that exist in the band gap.  Because of strong spin-orbit coupling, the spin of a carrier in one of these surface states is locked in a particular orientation relative to the carrier's momentum.  That tends to suppress large angle scattering by ordinary disorder, since ordinary disorder scattering doesn't flip spin.  One big question is, can these materials be grown in such a way that the bulk really is insulating?  During crystal growth, it is energetically cheap to form point defects in many of these materials that act as dopants, leading to serious bulk conduction.  Recent work has found materials (e.g., Bi2Te2Se) that are less problematic, but no one has (to my knowledge) figured out a way to grow really insulating thin films that retain the cool surface state properties.  A second question is, can one actually employ these surface states for anything useful?
  • Gating in strongly correlated materials - pioneered by Iwasa's group in Japan, there has been a boon in using ionic liquids (essentially molten organic salts) as electrolytes in gating experiments.  These liquids allow one to obtain surface charge densities comparable to those possible in chemical doping, on the order of one charge per unit cell on the surface.  That's enough to do interesting physics in strongly correlated materials (e.g., gating an insulating copper oxide layer into superconductivity).  How far can one push this?  Can this technique be used to develop a transistor based on the Mott metal-insulator transition?  
  • Quantum computing - this isn't new, of course, but there seems to be more and more work going on toward making some form of solid state, scalable quantum computer.  Which of the competing approaches will win out?  Spins, with their amazingly long coherence times in isotopically pure Si and diamond?  Superconducting flux or charge qubits?  It does not look like there is any fundamental reason why you couldn't have quantum computers, but it's an enormous technical challenge.
  • Optomechanics - there are a number of groups out there having lots of fun looking at micro- or nanoelectromechanical systems and coupling them to optics.  This lets you do optical cooling methods to put the mechanical systems into low-occupation quantum states; this lets you entangle the light with with mechanical system; etc.  What are the ultimate limits here?  Could this usher in a new style of precision measurement, or lead to new quantum information manipulations?
  • Plasmonics - we're firmly out of the stage now where every weird metal nanostructure with a plasmon resonance was netting a high profile paper.  Instead, people are looking at using plasmons to confine light to deep subwavelength scales, for super-tiny optical emitters, detectors, etc.  How small a laser can one make using plasmonics?  What other quantum optics tricks can one play with these tools?  Can plasmonic effects be engineered to improve photovoltaics significantly, or photocatalysis?
There are many more, of course.  Suggestions and discussion, as always, are appreciated.