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  1. Buchan, Alison (Ed.)
    ABSTRACT <p>Climate change jeopardizes human health, global biodiversity, and sustainability of the biosphere. To make reliable predictions about climate change, scientists use Earth system models (ESMs) that integrate physical, chemical, and biological processes occurring on land, the oceans, and the atmosphere. Although critical for catalyzing coupled biogeochemical processes, microorganisms have traditionally been left out of ESMs. Here, we generate a “top 10” list of priorities, opportunities, and challenges for the explicit integration of microorganisms into ESMs. We discuss the need for coarse-graining microbial information into functionally relevant categories, as well as the capacity for microorganisms to rapidly evolve in response to climate-change drivers. Microbiologists are uniquely positioned to collect novel and valuable information necessary for next-generation ESMs, but this requires data harmonization and transdisciplinary collaboration to effectively guide adaptation strategies and mitigation policy.</p></sec> </div> <a href='#' class='show open-abstract' style='margin-left:10px;'>more »</a> <a href='#' class='hide close-abstract' style='margin-left:10px;'>« less</a> <div class="actions" style="padding-left:10px;"> <span class="reader-count"> Free, publicly-accessible full text available May 8, 2025</span> </div> </div><div class="clearfix"></div> </div> </li> <li> <div class="article item document" itemscope itemtype="http://schema.org/TechArticle"> <div class="item-info"> <div class="title"> <a href="https://par.nsf.gov/biblio/10418336-towards-predicting-shear-banding-instabilities-lipid-monolayers" itemprop="url"> <span class='span-link' itemprop="name">Towards predicting shear-banding instabilities in lipid monolayers</span> </a> </div> <div> <strong> <a class="misc external-link" href="https://doi.org/10.1016/j.jmbbm.2023.105743" target="_blank" title="Link to document DOI">https://doi.org/10.1016/j.jmbbm.2023.105743  <span class="fas fa-external-link-alt"></span></a> </strong> </div> <div class="metadata"> <span class="authors"> <span class="author" itemprop="author">Carotenuto, A.R.</span> <span class="sep">; </span><span class="author" itemprop="author">Gaffney, A.</span> <span class="sep">; </span><span class="author" itemprop="author">Nguyen, N.</span> <span class="sep">; </span><span class="author" itemprop="author">Lee, K.Y.C.</span> <span class="sep">; </span><span class="author" itemprop="author">Pocivavsek, L.</span> <span class="sep">; </span><span class="author" itemprop="author">Fraldi, M.</span> <span class="sep">; </span><span class="author" itemprop="author">Deseri, L.</span> </span> <span class="year">( <time itemprop="datePublished" datetime="2023-05-01">May 2023</time> , Journal of the Mechanical Behavior of Biomedical Materials) </span> </div> <div class="actions" style="padding-left:10px;"> <span class="reader-count"> <a class="misc external-link" href="https://doi.org/10.1016/j.jmbbm.2023.105743" target="_blank" title="Link to document DOI" data-ostiid="10418336"> Full Text Available <span class="fas fa-external-link-alt"></span> </a> </span> </div> </div><div class="clearfix"></div> </div> </li> <li> <div class="article item document" itemscope itemtype="http://schema.org/TechArticle"> <div class="item-info"> <div class="title"> <a href="https://par.nsf.gov/biblio/10460873-spectral-method-moments-hierarchical-imitation-learning" itemprop="url"> <span class='span-link' itemprop="name">A Spectral Method of Moments for Hierarchical Imitation Learning</span> </a> </div> <div class="metadata"> <span class="authors"> <span class="author" itemprop="author">Nguyen, N.</span> <span class="sep">; </span><span class="author" itemprop="author">Molloy, T.L.</span> <span class="sep">; </span><span class="author" itemprop="author">Nair, G.N.</span> <span class="sep">; </span><span class="author" itemprop="author">Paschalidis, I.C.</span> </span> <span class="year">( <time itemprop="datePublished" datetime="2023-01-01">January 2023</time> , Proceedings of the 22nd IFAC World Congress) </span> </div> <div class="actions" style="padding-left:10px;"> <span class="reader-count"> <a class="misc" href="https://par.nsf.gov//servlets/purl/10460873" title="Link to document media" target="_blank"> <img class="ft_icon" alt="Accepted Manuscript" src="https://par.nsf.gov//img/ui/page_white_acrobat.png"/> Full Text Available</a> </span> </div> </div><div class="clearfix"></div> </div> </li> <li> <div class="article item document" itemscope itemtype="http://schema.org/TechArticle"> <div class="item-info"> <div class="title"> <a href="https://par.nsf.gov/biblio/10496794-microbiology-climate-change-transdisciplinary-imperative" itemprop="url"> <span class='span-link' itemprop="name">Microbiology and Climate Change: a Transdisciplinary Imperative</span> </a> </div> <div> <strong> <a class="misc external-link" href="https://doi.org/10.1128/mbio.03335-22" target="_blank" title="Link to document DOI">https://doi.org/10.1128/mbio.03335-22  <span class="fas fa-external-link-alt"></span></a> </strong> </div> <div class="metadata"> <span class="authors"> <span class="author" itemprop="author">Lennon, J. T.</span> <span class="sep">; </span><span class="author" itemprop="author">Frost, S. D.</span> <span class="sep">; </span><span class="author" itemprop="author">Nguyen, N. K.</span> <span class="sep">; </span><span class="author" itemprop="author">Peralta, A. L.</span> <span class="sep">; </span><span class="author" itemprop="author">Place, A. R.</span> <span class="sep">; </span><span class="author" itemprop="author">Treseder, K. K.</span> </span> <span class="year">( <time itemprop="datePublished" datetime="2023-02-28">February 2023</time> , mBio) </span> </div> <span class="editors"> <span class="editor" itemprop="editor">Whiteley, Marvin</span> (Ed.) </span> <div style="cursor: pointer;-webkit-line-clamp: 5;" class="abstract" itemprop="description"> Climate change is a complex problem involving nonlinearities and feedback that operate across scales. No single discipline or way of thinking can effectively address the climate crisis. </div> <a href='#' class='show open-abstract' style='margin-left:10px;'>more »</a> <a href='#' class='hide close-abstract' style='margin-left:10px;'>« less</a> <div class="actions" style="padding-left:10px;"> <span class="reader-count"> <a class="misc external-link" href="https://doi.org/10.1128/mbio.03335-22" target="_blank" title="Link to document DOI" data-ostiid="10496794"> Full Text Available <span class="fas fa-external-link-alt"></span> </a> </span> </div> </div><div class="clearfix"></div> </div> </li> <li> <div class="article item document" itemscope itemtype="http://schema.org/TechArticle"> <div class="item-info"> <div class="title"> <a href="https://par.nsf.gov/biblio/10423046-cross-platform-comparison-arbitrary-quantum-states" itemprop="url"> <span class='span-link' itemprop="name">Cross-platform comparison of arbitrary quantum states</span> </a> </div> <div> <strong> <a class="misc external-link" href="https://doi.org/10.1038/s41467-022-34279-5" target="_blank" title="Link to document DOI">https://doi.org/10.1038/s41467-022-34279-5  <span class="fas fa-external-link-alt"></span></a> </strong> </div> <div class="metadata"> <span class="authors"> <span class="author" itemprop="author">Zhu, D.</span> <span class="sep">; </span><span class="author" itemprop="author">Cian, Z. P.</span> <span class="sep">; </span><span class="author" itemprop="author">Noel, C.</span> <span class="sep">; </span><span class="author" itemprop="author">Risinger, A.</span> <span class="sep">; </span><span class="author" itemprop="author">Biswas, D.</span> <span class="sep">; </span><span class="author" itemprop="author">Egan, L.</span> <span class="sep">; </span><span class="author" itemprop="author">Zhu, Y.</span> <span class="sep">; </span><span class="author" itemprop="author">Green, A. M.</span> <span class="sep">; </span><span class="author" itemprop="author">Alderete, C. Huerta</span> <span class="sep">; </span><span class="author" itemprop="author">Nguyen, N. H.</span> <span class="sep">; </span><span class="author">et al</span></span> <span class="year">( <time itemprop="datePublished" datetime="2022-12-01">December 2022</time> , Nature Communications) </span> </div> <div style="cursor: pointer;-webkit-line-clamp: 5;" class="abstract" itemprop="description"> Abstract As we approach the era of quantum advantage, when quantum computers (QCs) can outperform any classical computer on particular tasks, there remains the difficult challenge of how to validate their performance. While algorithmic success can be easily verified in some instances such as number factoring or oracular algorithms, these approaches only provide pass/fail information of executing specific tasks for a single QC. On the other hand, a comparison between different QCs preparing nominally the same arbitrary circuit provides an insight for generic validation: a quantum computation is only as valid as the agreement between the results produced on different QCs. Such an approach is also at the heart of evaluating metrological standards such as disparate atomic clocks. In this paper, we report a cross-platform QC comparison using randomized and correlated measurements that results in a wealth of information on the QC systems. We execute several quantum circuits on widely different physical QC platforms and analyze the cross-platform state fidelities. </div> <a href='#' class='show open-abstract' style='margin-left:10px;'>more »</a> <a href='#' class='hide close-abstract' style='margin-left:10px;'>« less</a> <div class="actions" style="padding-left:10px;"> <span class="reader-count"> <a class="misc external-link" href="https://doi.org/10.1038/s41467-022-34279-5" target="_blank" title="Link to document DOI" data-ostiid="10423046"> Full Text Available <span class="fas fa-external-link-alt"></span> </a> </span> </div> </div><div class="clearfix"></div> </div> </li> <li> <div class="article item document" itemscope itemtype="http://schema.org/TechArticle"> <div class="item-info"> <div class="title"> <a href="https://par.nsf.gov/biblio/10333223-multiscale-geometry-mechanics-lipid-monolayer-collapse" itemprop="url"> <span class='span-link' itemprop="name">Multiscale geometry and mechanics of lipid monolayer collapse</span> </a> </div> <div> <strong> <a class="misc external-link" href="https://doi.org/10.1016/bs.ctm.2021.08.003" target="_blank" title="Link to document DOI">https://doi.org/10.1016/bs.ctm.2021.08.003  <span class="fas fa-external-link-alt"></span></a> </strong> </div> <div class="metadata"> <span class="authors"> <span class="author" itemprop="author">Carotenutoa, A.R.</span> <span class="sep">; </span><span class="author" itemprop="author">Nguyen, N.</span> <span class="sep">; </span><span class="author" itemprop="author">Cao, K.</span> <span class="sep">; </span><span class="author" itemprop="author">Waring, A.J.</span> <span class="sep">; </span><span class="author" itemprop="author">Kee, K.Y.C.</span> <span class="sep">; </span><span class="author" itemprop="author">Owen, D.</span> <span class="sep">; </span><span class="author" itemprop="author">Fraldi, M</span> <span class="sep">; </span><span class="author" itemprop="author">Deserig, L.</span> <span class="sep">; </span><span class="author" itemprop="author">Pocivavsek, L.</span> </span> <span class="year">( <time itemprop="datePublished" datetime="2021-10-01">October 2021</time> , Current topics in membranes) </span> </div> <div style="cursor: pointer;-webkit-line-clamp: 5;" class="abstract" itemprop="description"> Langmuir monolayers at gas/liquid interfaces provide a rich framework to investigate the interplay between multiscale geometry and mechanics. Monolayer collapse is investigated at a topological and geometric level by building a scale spaceM from experimental imaging data. We present a general lipid monolayer collapse phase diagram, which shows that wrinkling, folding, crumpling, shear banding, and vesiculation are a continuous set of mechanical states that can be approached by either tuning monolayer composition or temperature. The origin of the different mechanical states can be understood by investigating the monolayer geometry at two scales: fluorescent vs atomic force microscopy imaging. We show that an interesting switch in continuity occurs in passing between the two scales, CAFM MAFM 6¼ CFM M. Studying the difference between monolayers that fold vs shear band, we show that shear banding is correlated to the persistence of a multi-length scale microstructure within the monolayer at all surface pressures. A detailed analytical geometric formalism to describe this microstructure is developed using the theory of structured deformations. Lastly, we provide the first ever finite element simulation of lipid monolayer collapse utilizing a direct mapping from the experimental image spaceM into a simulation domain P. We show that elastic dissipation in the form of bielasticity is a necessary and sufficient condition to capture loss of in-plane stability and shear banding. </div> <a href='#' class='show open-abstract' style='margin-left:10px;'>more »</a> <a href='#' class='hide close-abstract' style='margin-left:10px;'>« less</a> <div class="actions" style="padding-left:10px;"> <span class="reader-count"> <a class="misc external-link" href="https://doi.org/10.1016/bs.ctm.2021.08.003" target="_blank" title="Link to document DOI" data-ostiid="10333223"> Full Text Available <span class="fas fa-external-link-alt"></span> </a> </span> </div> </div><div class="clearfix"></div> </div> </li> <li> <div class="article item document" itemscope itemtype="http://schema.org/TechArticle"> <div class="item-info"> <div class="title"> <a href="https://par.nsf.gov/biblio/10273598-probing-many-body-localization-noisy-quantum-computer" itemprop="url"> <span class='span-link' itemprop="name">Probing many-body localization on a noisy quantum computer</span> </a> </div> <div> <strong> <a class="misc external-link" href="https://doi.org/10.1103/PhysRevA.103.032606" target="_blank" title="Link to document DOI">https://doi.org/10.1103/PhysRevA.103.032606  <span class="fas fa-external-link-alt"></span></a> </strong> </div> <div class="metadata"> <span class="authors"> <span class="author" itemprop="author">Zhu, D.</span> <span class="sep">; </span><span class="author" itemprop="author">Johri, S.</span> <span class="sep">; </span><span class="author" itemprop="author">Nguyen, N. H.</span> <span class="sep">; </span><span class="author" itemprop="author">Alderete, C. Huerta</span> <span class="sep">; </span><span class="author" itemprop="author">Landsman, K. A.</span> <span class="sep">; </span><span class="author" itemprop="author">Linke, N. M.</span> <span class="sep">; </span><span class="author" itemprop="author">Monroe, C.</span> <span class="sep">; </span><span class="author" itemprop="author">Matsuura, A. Y.</span> </span> <span class="year">( <time itemprop="datePublished" datetime="2021-03-01">March 2021</time> , Physical Review A) </span> </div> <span class="editors"> <span class="editor" itemprop="editor">null</span> (Ed.) </span> <div class="actions" style="padding-left:10px;"> <span class="reader-count"> <a class="misc external-link" href="https://doi.org/10.1103/PhysRevA.103.032606" target="_blank" title="Link to document DOI" data-ostiid="10273598"> Full Text Available <span class="fas fa-external-link-alt"></span> </a> </span> </div> </div><div class="clearfix"></div> </div> </li> <li> <div class="article item document" itemscope itemtype="http://schema.org/TechArticle"> <div class="item-info"> <div class="title"> <a href="https://par.nsf.gov/biblio/10273623-generation-thermofield-double-states-critical-ground-states-quantum-computer" itemprop="url"> <span class='span-link' itemprop="name">Generation of thermofield double states and critical ground states with a quantum computer</span> </a> </div> <div> <strong> <a class="misc external-link" href="https://doi.org/10.1073/pnas.2006337117" target="_blank" title="Link to document DOI">https://doi.org/10.1073/pnas.2006337117  <span class="fas fa-external-link-alt"></span></a> </strong> </div> <div class="metadata"> <span class="authors"> <span class="author" itemprop="author">Zhu, D.</span> <span class="sep">; </span><span class="author" itemprop="author">Johri, S.</span> <span class="sep">; </span><span class="author" itemprop="author">Linke, N. M.</span> <span class="sep">; </span><span class="author" itemprop="author">Landsman, K. A.</span> <span class="sep">; </span><span class="author" itemprop="author">Huerta Alderete, C.</span> <span class="sep">; </span><span class="author" itemprop="author">Nguyen, N. H.</span> <span class="sep">; </span><span class="author" itemprop="author">Matsuura, A. Y.</span> <span class="sep">; </span><span class="author" itemprop="author">Hsieh, T. H.</span> <span class="sep">; </span><span class="author" itemprop="author">Monroe, C.</span> </span> <span class="year">( <time itemprop="datePublished" datetime="2020-10-13">October 2020</time> , Proceedings of the National Academy of Sciences) </span> </div> <span class="editors"> <span class="editor" itemprop="editor">null</span> (Ed.) </span> <div style="cursor: pointer;-webkit-line-clamp: 5;" class="abstract" itemprop="description"> Finite-temperature phases of many-body quantum systems are fundamental to phenomena ranging from condensed-matter physics to cosmology, yet they are generally difficult to simulate. Using an ion trap quantum computer and protocols motivated by the quantum approximate optimization algorithm (QAOA), we generate nontrivial thermal quantum states of the transverse-field Ising model (TFIM) by preparing thermofield double states at a variety of temperatures. We also prepare the critical state of the TFIM at zero temperature using quantum–classical hybrid optimization. The entanglement structure of thermofield double and critical states plays a key role in the study of black holes, and our work simulates such nontrivial structures on a quantum computer. Moreover, we find that the variational quantum circuits exhibit noise thresholds above which the lowest-depth QAOA circuits provide the best results. </div> <a href='#' class='show open-abstract' style='margin-left:10px;'>more »</a> <a href='#' class='hide close-abstract' style='margin-left:10px;'>« less</a> <div class="actions" style="padding-left:10px;"> <span class="reader-count"> <a class="misc external-link" href="https://doi.org/10.1073/pnas.2006337117" target="_blank" title="Link to document DOI" data-ostiid="10273623"> Full Text Available <span class="fas fa-external-link-alt"></span> </a> </span> </div> </div><div class="clearfix"></div> </div> </li> <li> <div class="article item document" itemscope itemtype="http://schema.org/TechArticle"> <div class="item-info"> <div class="title"> <a href="https://par.nsf.gov/biblio/10094492-sub-analog-assisted-inverter-based-digital-low-dropout-regulator-fast-response-time-current-efficiency" itemprop="url"> <span class='span-link' itemprop="name">A Sub-1V Analog-Assisted Inverter-Based Digital Low-Dropout Regulator with a Fast Response Time at 25mA/100ps and 99.4% Current Efficiency</span> </a> </div> <div class="metadata"> <span class="authors"> <span class="author" itemprop="author">B. Nguyen, N. Tang</span> </span> <span class="year">( <time itemprop="datePublished" datetime="2019-04-17">April 2019</time> , IEEE Custom Integrated Circuits Conference 2019) </span> </div> <div class="actions" style="padding-left:10px;"> <span class="reader-count"> <a class="misc" href="https://par.nsf.gov//servlets/purl/10094492" title="Link to document media" target="_blank"> <img class="ft_icon" alt="Accepted Manuscript" src="https://par.nsf.gov//img/ui/page_white_acrobat.png"/> Full Text Available</a> </span> </div> </div><div class="clearfix"></div> </div> </li> <li> <div class="article item document" itemscope itemtype="http://schema.org/TechArticle"> <div class="item-info"> <div class="title"> <a href="https://par.nsf.gov/biblio/10112675-creating-backscattering-side-channel-enable-detection-dormant-hardware-trojans" itemprop="url"> <span class='span-link' itemprop="name">Creating a Backscattering Side Channel to Enable Detection of Dormant Hardware Trojans</span> </a> </div> <div class="metadata"> <span class="authors"> <span class="author" itemprop="author">Nguyen, N.</span> <span class="sep">; </span><span class="author" itemprop="author">Cheng, C.</span> <span class="sep">; </span><span class="author" itemprop="author">Prvulovic, M</span> <span class="sep">; </span><span class="author" itemprop="author">Zajić, A.</span> </span> <span class="year">( <time itemprop="datePublished" datetime="2019-07-01">July 2019</time> , IEEE transactions on very large scale integration (VLSI) systems) </span> </div> <div class="actions" style="padding-left:10px;"> <span class="reader-count"> <a class="misc" href="https://par.nsf.gov//servlets/purl/10112675" title="Link to document media" target="_blank"> <img class="ft_icon" alt="Accepted Manuscript" src="https://par.nsf.gov//img/ui/page_white_acrobat.png"/> Full Text Available</a> </span> </div> </div><div class="clearfix"></div> </div> </li> </ol> <div id="pagination-lower" style=""> <div class="pull-right" style="line-height: 30px;"> <div class="btn-group pagination nomargin"> <a href="#" class="btn btn-sm btn-default noborderradius" disabled="disabled">«<span class="hidden-xs"> Prev</span></a> <a class="dropdown-toggle btn btn-sm btn-default paging-dropdown hidden-xs noborderradius" href="#" data-toggle="dropdown"><span class="caret"></span><span class="sr-only">Select page number</span></a> <div class="dropdown-menu pull-right paging-slider-dropdown" style="padding: 15px;"> <small> <div class="text-muted" style="line-height:20px;"><label for="pagination-sel-sptag-2">Go to page: <span class="paging-target">1</span> of <span class="paging-max">2</span></label></div> <div> <table> <tr> <td valign="top"> <input id="pagination-sel-sptag-2" data-range="" value="1" min="1" max="2" name="pagination-sel" type="range" class="pagination-sel noborderradius" style="height:26px;padding:0px;margin-right:5px; 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