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Showing posts with label Higgs. Show all posts
Showing posts with label Higgs. Show all posts

Friday, 25 September 2015

Friday wrap-up: Nima, weakly coupled high-scale physics...

Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics. Views are my own. Content very definitely skewed by my own leanings and by papers getting coverage, and it may not even be correct. It is a blog after all...

  • There is an article at Quanta Magazine constructed around a profile of Nima Arkani-Hamed that is well worth a read. It includes his (and others') visions of and predictions for the future of high-energy physics, and the important role the Chinese might play in constructing a 100 TeV collider.
  • A few things wrapped up for me this week...

    (1) Uploaded to the arXiv v2 of a paper on displaced Higgs decays (see blog from back in June). In particular, the new version has the plots updated and include some recent results. Besides the scientific content, at the very least they are pleasing to the eye (well at least to mine)! I find this kind of phenomenology very interesting, and there is certainly more to be said in conversation between phenomenologists and experimentalists on where to search and how to present results for displaced physics.


    (2) Uploaded to the arXiv a conference proceedings (PLANCK) summarising two recent papers: "How to avoid unnatural hierarchical thermal leptogenesis." If you'd like to know why explaining baryogenesis and neutrino masses with the minimal three-flavour Type I seesaw and hierarchical leptogenesis is necessarily unnatural, and the various ways around it, this document should serve as a good summary. Or see the blog post from May for an even shorter summary. The second part of the proceedings describes a two-Higgs-doublet model with right-handed neutrinos (ν2HDM) which can achieve hierarchical leptogenesis and realise the neutrino masses without introducing a naturalness problem. This model serves as the basis for the following...

    (3) Uploaded an arXiv preprint titled: "νDFSZ: a technically natural non-supersymmetric model of neutrino masses, baryogenesis, the strong CP problem, and dark matter." It is a rather short paper which contains an existence proof that weakly coupled high-scale physics can explain phenomenological shortcomings of the SM without introducing a naturalness problem. The model adds only three right-handed neutrinos, a scalar doublet, and a scalar singlet to the SM. It contains a hierarchy of scales up to $\sim 10^{11}\text{ GeV}$. Nevertheless, corrections to the Higgs mass (and other mass scales) can be calculated, and it is shown that a technically natural decoupling limit of the model can protect all scales from large quantum corrections. If this is surprising in any way for you, since it is (or at least appears to be) a widely held misconception that high-scale physics implies a naturalness problem, then I suggest you read our preprint, or this earlier blog post! Let's be clear here: the model does not solve the big hierarchy problem; we don't explain where the hierarchy of scales comes from, we just show that the hierarchy we introduce is not fine-tuned (that is the real worry), i.e. it is a radiatively stable hierarchy, or, it is "technically natural".

    I find it extremely interesting that the major shortcomings of the standard model can be answered naturally in such a modest extension of the SM. Models like this with weakly coupled high-scale physics, in my opinion, deserve more attention.
    • The Taller de Altas Energías 2015 School is currently ongoing (programme here).
      • Links without (too many) thinks:
        • Life and Physics from Jon Butterworth: "How the Higgs boson is born and how it dies: the most precise picture so far."
        • ATLAS Blogs: Part 2 of James Howarth's TOP2015 review.
        • The Conversation: "How we plan to bring dark matter to light," with a little on SUPL and SABRE.
        • Cosmos: "Ghost traps: the hunt for dark matter," interesting to read if only to observe how the field's "dark matter = WIMP" prejudice leads to misleading (even incorrect) statements in lay articles...
      • In video/audio media:
        • In Particular Ep 3: Particle Zoo... what is your favourite particle? [35:15]
        • CERN: Timelapse video of the CERN Axion Solar Telescope (CAST) following the Sun [1:22], and a bit of noise rock in situ; Deerhoof vs. the Large Hadron Collider [9:05].
        • Waking Up with Sam Harris: The Multiverse & You (& You & You & You…), A Conversation with Max Tegmark. [1:26:42]
        • MinutePhysics: Why do we put telescopes in space? [2:20]
        • It's Okay to be Smart: Theory vs. Hypothesis vs. Law... Explained! [7:11]
        • Numberphile: Philosophy of Numbers. [9:40]

      Friday, 18 September 2015

      Friday wrap-up: diboson update, XMASS...

      Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics. Views are my own. Content very definitely skewed by my own leanings and by papers getting coverage, and it may not even be correct. It is a blog after all...

      • It's the season for conferences! This week we have...
        • 8th International Workshop on Top Quark Physics (TOP2015: indico; twitter). One of the interesting new results includes evidence for (>3σ) single top quark production in the s-channel with the 8 TeV dataset. There's an entertaining review of the first two days here from James Howarth.
        • Particle Astrophysics and Cosmology Including Fundamental InteraCtions (PACIFIC 2015: agenda).
        • Corfu Summer Institute: 15th Hellenic School and Workshops on Elementary Particle Physics and Gravity (programme).
      • The second is an ATLAS diboson resonance search which combines the results from the large-R dijet channel with the leptonic channels. The results are well summed up by the first Figure in the Appendix:


        In short, when interpreted as a $W'$ resonance decaying to $WZ$, they see a 3.4σ local excess in the boosted jet topology and absolutely nothing in the leptonic channels. As well, these leptonic channels were sensitive to the $W'$ interpretation of the dijet excess, so that the local significance when combined falls to 2.5σ. Taken at face value then, if the dijet excess is really new physics, it is unlikely to be as simple as $W'\to WZ$. [As an aside: I do wonder how the community's reaction would have differed if this were that paper that was published first?]. To mimic such a signal without the leptons you would need a heavy resonance decaying to two exotic particles with mass $\sim m_Z$, which then decay mostly to quarks... would be difficult to hide these low mass exotics. Or else it is something more complex that happens to pass the selection criteria for the fat jet analysis but produces very few isolated leptons. Anyway, there have been >30 extra citations to the original ATLAS paper since I made a quick literature survey seven weeks ago, and more every week. For me it seems sensible to just wait and see what the new data says (probably some time next year), happy to watch the ambulance in the distance, starting to speed up...
      • The TAUP2015 parallel session slides are now up. Indeed, as speculated last week, XMASS has a best fit modulation that is opposite in phase to that seen by DAMA/LIBRA (see Slide 10 [pdf]). It is enough evidence to exclude much of the region where the DAMA signal can be interpreted as a standard WIMP with spin-independent nucleon scattering cross-section (though this is nothing new). Interesting to see what their results will be in the fiducial volume (analysis ongoing).


      • 32 Australian institutions have signed up to the Science in Australia Gender Equity (SAGE) pilot: "Commencing in September 2015, the pilot requires participants to collect, analyse and present data on gender equity policies and practices in STEM departments, as well as identify gaps and opportunities for improvement."
      • Links without thinks:
        • Institute for Advanced Study: "Beyond the Higgs: From the LHC to China."
        • Richard Dawid wrote a guest blog on the reference frame: "What confirms a physical theory?" This should be taken in the context of that Ellis/Silk nature comment article and the ensuing debate on post-empirical science.
        • New Scientist: "Black holes may be brick walls that bounce information back out." On 't Hooft's new contribution to the black hole information paradox...
        • ... and Sabine Hossenfelder's reaction at Starts With a Bang: "Black holes and academic walls."
        • Also at Starts With a Bang: "Will The LHC Be The End Of Experimental Particle Physics?"
      • Lastly, in images from space, it is hard to top these new images of Pluto!


      Saturday, 5 September 2015

      Friday wrap-up: ATLAS+CMS Higgs combination, THE rankings...

      Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics. Views are my own. Content very definitely skewed by my own leanings and by papers getting coverage, and it may not even be correct. It is a blog after all...

      • Conferences of interest this week include The 3rd Annual Large Hadron Collider Physics Conference (LHCP2015; indico; twitter), and QCD@LHC 2015 (indico).
      • At LHCP, Marco Pieri presented the brand new ATLAS+CMS Higgs combination (talk here [pdf]). Slides 17 and 18 tell the story for the SM Higgs versus the null:


        The interesting things for me are: global signal strength fit is $\mu=1.09^{+0.11}_{-0.10}$, H→ττ and VBF production are (preliminarily) "discovered" at >5σ, and ttH has a mild (2.3σ) excess (already hinted at Moriond) to keep an eye on. Different parameterisations are also studied, finding, of course, everything consistent with a SM Higgs. Would imagine we can look forward to the arXiv paper soon.
      • The Times Higher Education World University Rankings have decided to exclude from their analysis all papers with more than 1000 authors for the 2015-16 rankings. This obviously has a big impact on those involved in the ATLAS/CMS collaborations. Interesting to read the comments below the post from John Ellis, James Stirling, and Andrew Hamilton, among others.
      • According to this nature news article, there are some concerns for the cooling pumps in the AMS-02 experiment. There were originally four cooling pumps. They write: "Only one pump is needed at any given time. One failed in February 2014 and at least one of the other three is showing possible signs of trouble." Also: "[Ting] exhibited little patience for questions about the cooling pumps. 'We have four pumps — we only need one,' he says. 'We expect to operate for the lifetime of the space station.'"
      • Some movement on the Hawking/Perry/Strominger proposal for the black hole information loss problem. There's now a short stake-claiming arXiv paper, and an hour-long talk from Malcolm Perry on YouTube. Sabine Hossenfelder reacts here.
      • From CERN: a summary on LHC Run 2 so far from Rolf Heuer (he comments on the CMS magnet: "... it’s clear that there are contaminants in the cold box that supplies the magnet with liquid helium, and this will therefore need a thorough clean.... All being well, CMS will be able to take data satisfactorily with field on until the end of the 2015 physics programme, postponing the cleaning operation until the winter stop in order to be ready for the start of 2016."), and a summary on recent scrubbing runs.
      • In video/audio media:
      • Lastly, here is an antineutrino global map: an experimentally informed model of Earth’s surface antineutrino flux over the 0 to 11 MeV energy spectrum.

      Friday, 21 August 2015

      Friday wrap-up: 3/fb, ATLAS on Higgs LFV decays...

      Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics. Views are my own. Content very definitely skewed by my own leanings and by papers getting coverage, and it may not even be correct. It is a blog after all...

      FYI, I've posted a list of recommended (active) high energy physics news and blog links in the sidebar, also here for those using a reader: A Perfectly Formed Puddle, A Quantum Diaries Survivor, ATLAS Blog, ATLAS Briefings, ATLAS News, Backreaction, CERN Press Releases, CERN Updates, CMS Blog: Cylindrical Onion, CMS Physics News, Collider Blog, Ellipsix, Interactions.org, Life and Physics, Life on the Lattice, Looking Inside the SM, Nautilus: Particle Physics, Neutrino Blog, Not Even Wrong, Of Particular Significance, PhysicsMatt, Preposterous Universe, Quanta Magazine: Physics, Quantum Diaries, RWTH Aachen, Resonaances, Tim Head, Transcyberphysix, symmetry magazine, the reference frame.

      • The XXVII International Symposium on Lepton Photon Interactions at High Energies (Lepton Photon 2015) has been going this week (indico/twitter). We heard from Mike Lamont about LHC performance; multiple commissioning issues (electron cloud, UFOs, ULO, ...), none of which are expected to be long term, mean that predicted integrated luminosity for ATLAS/CMS in 2015 is now at ~3/fb. [See also a brief story at New Scientist].
      • Following up the CMS 2.4σ excess from February, ATLAS on Monday placed their search for LFV Higgs decays in the $\mu\tau_{had}$ channel on the arXiv. Their result is consistent with zero, but also consistent with CMS. Their best fit is a $\mathcal{B}=(0.77\pm 0.62)\%$, compared to $\mathcal{B}=(0.84^{+0.39}_{-0.30})\%$ from CMS. One can see that the CMS search is more sensitive; this is likely driven by the fact that CMS also included the $\mu\tau_e$ channel. Do ATLAS have plans to look at this channel soon as well?
      • A few weeks ago we mentioned that LHCb announced preliminary results in a search for displaced light scalar bosons. The preprint is on the arXiv now, which allowed me to scrape their data points and reinterpret their branching limits for the real singlet scalar portal. For interest, the result is below in orange, quite similar to the approximate plot from that previous blog post (more information there). Anyway, LHCb have done a great job excluding parameter space!


      • The Dark Energy Survey (DES) has discovered eight new dwarf galaxy candidates (arXiv/press release), to add to the nine they discovered earlier this year. The sky is filling with satellites...


        Now taking bets on which one has an excess of gamma rays consistent with dark matter annihilation... 
      • On that note, the first paper pointing out the gamma ray excess in Reticulum II (on the day of the first DES dwarf galaxy candidates announcement) was published in Physical Review Letters this week. Tracy Slatyer has a Viewpoint here.
      • Mary K. Gaillard has a book out: A Singularly Unfeminine Profession: One Woman's Journey in Physics. There's a review on nature.com from Val Gibson.

      Friday, 8 May 2015

      Friday wrap-up: Collisions, displaced Higgs decays...

      Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics. Views are my own. Content very definitely skewed by my own leanings and by papers getting coverage, and it may not even be correct. It is a blog after all...

      • The LHC has seen collisions at injection energy, 450 GeV per beam. There's a little more you can read at symmetry magazine; still plenty of calibration to be done. Here's one of the events in the ATLAS detector, a far cry from the messy environment we'll see at 13 TeV...


        As well, CMS has a visualisation of one of their events on YouTube.
      • Pheno 2015 happened this week in Pittsburgh. Definitely worth perusing the interesting talks on the indico page.
      • I uploaded an arXiv preprint on Monday, "Constraining portals with displaced Higgs decay searches at the LHC." One of the primary purposes of the LHC is to study the properties of the newly discovered Higgs boson in great detail. Even though we have now measured its mass to within ~0.2%, it is still possible that it is decaying to exotic particles 20% of the time! So it is clearly sensible to search for exotic Higgs decays. I concentrated on one possibility: the decay to a pair of long-lived particles which each subsequently decay around 1 metre from the beam pipe...

        Such long-lived particles are well-motivated; typically all you need is an approximate symmetry (which is by definition technically natural à la 't Hooft) in your model which if exact would result in a stable particle. This appears to be coming into vogue at the moment as we see natural SUSY being pushed into compressed and long-lived areas of parameter space; for example, if you violate R-parity just slightly then the would-be neutralino dark matter candidate can become long-lived. I became interested in this sort of phenomenology from a much simpler standard model (SM) extension: by a real singlet scalar field $S$. In that case you can write down a potential term $\zeta \phi^\dagger\phi S^2$ which mixes the Higgs boson and a new mass eigenstate $s$ after symmetry breaking. As $\zeta\to 0$ the $S$ field decouples from the SM and becomes stable, so for small $\zeta$ it is long-lived. It is possible that the $S$ also directly couples to some dark sector uncharged under the SM forces, so-called Higgs portal models. Anyway, the Higgs we know and love can decay to two $s$ particles which, in the simplest case, decay to SM particles somewhere in the middle of the detector. Else the $s$ could have some complex cascade decay into hidden sector states which subsequently decay in the middle of the detector (often called hidden valley models).

        You can do a similar thing with a massive dark photon, the so-called vector portal. In fact, the possibilities are many and varied, which presents two complementary challenges: how do collaborations present their results in the most model-independent way possible? and how do phenomenologists reinterpret the results in the context of their own models? The point of my paper was to explore these questions...

        So I had a go at reinterpreting two searches already performed by ATLAS, in a very simple way: by running Monte Carlo simulations, calculating decay probabilities, and folding in the provided particle reconstruction efficiencies as a function of the decay distance of the long-lived particles. As phenomenologists we are reliant upon these provided efficiencies, as there is no tool available to reliably calculate them ourselves. As we move on the journey which constitutes the bulk of the paper, we learn some valuable life lessons about what efficiency table information the collaborations could provide to make the life of phenomenologists wanting to reinterpret their searches (and there are a few of us out there!) much easier. Those life lessons are summarised in the conclusion.

        As well, at the end of the day I was able to make my own contribution to the portal model exclusion space, with the pretty pictures below...


      • There's an article at Nautilus on "The Admiral of the String Theory Wars" AKA Peter Woit. As might be intuited, the article describes the string theory wars around the time when Woit released his book, "Not Even Wrong." It touches on his arXiv trackback controversy and feud with Polchinski. (Also I learned that Motl once compared Woit to bin Laden...). Woit said a few words about the article on his blog. There is also some discussion there on the following...
      • You should be able to find Amanda Peet's hour long Perimeter Institute public lecture on string theory on YouTube within a day or so.

      Friday, 1 May 2015

      Friday wrap-up: DM self-interactions, on-Z excess, AMS...

      Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics. Views are my own. Content very definitely skewed by my own leanings and by papers getting coverage, and it may not even be correct. It is a blog after all...

      • This arXiv preprint answers my hanging question from a couple of weeks ago as to how the recent Abell 3827 (four-)galaxy cluster measurement is $10^4$ times more sensitive to dark matter self-interactions than the larger scale Bullet Cluster type measurement that hit the news in late March. The answer according to the authors: it isn't! The system is composed of four galaxies, each with a dark matter subhalo, infalling into a larger dark matter halo. The subhaloes are observed to have lagged behind after a long infall period, with the possible interpretation that the dark matter is experiencing some DM-DM drag force that the stars are not. The claim in this new preprint is that the Massey et al paper made the assumption that the stars and the associated DM subhalo develop completely independently. But clearly they are gravitationally bound! And this matters. When taken into account, it is clear that a much stronger dark matter self-interaction is necessary to explain the offsets of the subhaloes from the stars. They find a strength $\sigma/m_{DM}\sim 3 \text{ cm}^2\text{g}^{-1}$, in tension with the limit from the larger clusters (also from Massey et al...).
      • On the ATLAS on-Z excess, I count already six articles dedicated to discussing/explaining it. In particular, this one points out that an explanation in terms of the simplified General Gauge Mediation model taken as a benchmark in the ATLAS paper is inconsistent with other measurements. As shown below, the white band preferred by the on-Z excess is disfavoured by a collection of other measurements.


        There are at least a-few-papers which claim that a decay chain more like $\tilde g \to q\bar{q}\tilde \chi_2^0 \to q\bar{q} Z \chi_1^0$ with a somewhat compressed spectra can go some way to explaining the excess while remaining consistent with other observations.
      • On the AMS antiproton-proton "excess" there have been a few more preprints showing up on the arXiv. I took a quick look at this one, which does the sensible thing: notes that propagation models can fit the data fairly well, and that there is no unambiguous excess (though there are always some that see things another way...), nevertheless we can use these models along with the observations to bound the dark matter annihilation contribution at high energies -- which is the interesting physics after all!


        Above are the limits they derive on the annihilation cross-section into $b\bar{b}$ obtained assuming two different propagation models. What's interesting is that they compete with the Fermi dwarf spheroidal bounds for $m_{DM}\lesssim 100$ GeV, which is the region of interest for the galactic centre excess.
      • The Stawell Underground Physics Laboratory project aiming at setting up the southern hemisphere's first dark matter direct detection experiment looks like it's really coming along (It even has a Wiki page now)! There was a stakeholder event in Stawell on Tuesday and some buzz from the CAASTRO group on twitter...

      • Ellis, Gaillard, and Nanopoulos have uploaded "An Updated Historical Profile of the Higgs Boson" to the arXiv.
      • Another nice-couple of articles at Quanta Magazine on quantum phenomena.

      arXiv-watch: Feb-Apr 2015

      The top five cited articles (according to INSPIRE) of the last three months overall and of the last six months in hep-ph.

      Hot topics are the Planck (and BICEP2/Keck) results for the final month in these blog entry installments, and the ATLAS+CMS combined Higgs mass measurement first presented at Moriond.

      1.
      2.
      3.
      Joint Analysis of BICEP2/Keck Array and Planck Data
      BICEP2 and Planck Collaborations (P. A. R. Ade (Cardiff U.) et al.). Feb 2, 2015. 17 pp.
      Published in Phys.Rev.Lett. 114 (2015) 10, 101301
      DOI: 10.1103/PhysRevLett.114.101301
      e-Print: arXiv:1502.00612 [astro-ph.CO] | PDF

      4.
      5.

      In hep-ph we are continually chasing excesses: hot topics are the galactic centre excess, the LHCb B→K*μμ and LFU measurements, and the CMS Higgs LFV decay measurement.

      1.
      2.
      3.
      WIMPs at the Galactic Center
      Prateek Agrawal (Fermilab), Brian Batell (CERN), Patrick J. Fox, Roni Harnik (Fermilab). Nov 10, 2014. 34 pp.
      FERMILAB-PUB-14-411-T, CERN-PH-TH-2014-219
      e-Print: arXiv:1411.2592 [hep-ph] | PDF

      4.
      Lepton Flavor Violation in B Decays?
      Sheldon L. Glashow (Boston U.), Diego Guadagnoli (Annecy, LAPP), Kenneth Lane (Boston U.). Nov 3, 2014. 4 pp.
      Published in Phys.Rev.Lett. 114 (2015) 091801
      LAPTH-227-14, CERN-PH-TH-2014-229
      DOI: 10.1103/PhysRevLett.114.091801
      e-Print: arXiv:1411.0565 [hep-ph] | PDF

      5.

      Saturday, 25 April 2015

      Friday wrap-up: SHiP, portals...

      Wherein I list some (mostly) recent happenings, ramble a bit, and provide links, in an order roughly determined by importance and relevance to particle physics. Views are my own. Content very definitely skewed by my own leanings and by papers getting coverage, and it may not even be correct. It is a blog after all...

      • The SHiP fixed target experiment has uploaded its 200+ page physics case to the arXiv. Working at the intensity frontier, fixed target experiments collide very many (in this case) protons on a heavy target, with a detector placed some distance away after a significant amount of shielding. Because of the sheer number of protons on target, the setup is particularly sensitive to any ≲GeV scale extremely weakly interacting particles (large number × small number = detectable number!). The document is very comprehensive and speaks for itself; evidently the experiment has the capacity to explore some very interesting new physics scenarios, for example...

        If one modestly extends the standard model with a vector or a scalar field, it is always possible to write down gauge-invariant operators$$\epsilon F^{\mu\nu}F'^{\mu\nu},\\ \xi\phi^\dagger\phi S^2,$$where $F'^{\mu\nu}$ is a dark field strength operator and $S$ is a real singlet scalar. These are known as portal operators, and in the limit of very small $\epsilon$ or $\xi$ (which restores an enhanced Poincare symmetry and is therefore technically natural) the new states (referred to often as the dark photon and dark Higgs) are very long-lived and very weakly coupled to standard model states, so that they could still have gone undetected even if their masses are sub-GeV. If dark matter couples directly to these new states then they provide a "portal" from the standard model to the dark sector.

        So I was very interested to see the reach of the proposed experiment with respect to those portals; that reach is shown below as a function of mass for the case without dark matter, or with $m_{DM}>m_{A},m_S$ (the g* in the singlet case is proportional to the $\xi$ parameter above)...


        It is evident that the experiment would explore a significant amount of unexplored (not grey) parameter space (and the results are even stronger for a pseudoscalar). For the dark scalar case, the reach of the experiment comes from the unprecedented (in a fixed target experiment) number of B mesons produced, which can then subsequently decay to the light scalar state at a rate of one in a million or so. The states then live long enough to travel through the (~70m of) shielding before decaying in the detector.

        It is of note that unfortunately the widths and branching ratios of the scalar in the region $2m_\pi < m_S \lesssim 4$ GeV have large hadronic uncertainties, and the plot above must assume one theoretical prediction, so the story is not as clear-cut as it seems; luckily the experiment would be sensitive to many final states, and this goes some way to making the reach independent of this uncertainty. (These uncertainties do not exist for the dark photon thanks to measurements of our very own photon!). The most recent theoretical calculation for the dark scalar widths in this region is >20 years old. I wonder if lattice QCD could have something to say if it was applied to the problem?
      • Scientific American has an article on self-interacting dark matter on the back of the Abell 3827 cluster "hint" from last week.
      • And now that we have warmed up with Hubble here are some photos from the week...