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		<title>UW MEM·C</title>
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		<description><![CDATA[UW MEM·C]]></description>
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			<title>News</title>
			<pubDate><![CDATA[Wed, 19 Jul 2023 01:37:57 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/giant-coercivity-and-enhanced-intrinsic-anomalous-hall-effect-at-vanishing-magnetization-in-a-compensated-kagome-ferrimagnet/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/giant-coercivity-and-enhanced-intrinsic-anomalous-hall-effect-at-vanishing-magnetization-in-a-compensated-kagome-ferrimagnet/]]></link>
			<title>Giant coercivity and enhanced intrinsic anomalous Hall effect at vanishing magnetization in a compensated kagome ferrimagnet</title>
			<pubDate><![CDATA[Wed, 11 Feb 2026 00:07:36 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/dual-metal-complex-functionalization-of-black-phosphorus/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/dual-metal-complex-functionalization-of-black-phosphorus/]]></link>
			<title>Dual Metal Complex Functionalization of Black Phosphorus</title>
			<pubDate><![CDATA[Wed, 11 Feb 2026 00:00:06 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/substrate-directed-dimensional-and-phase-control-of-peptide-assemblies-on-two-dimensional-van-der-waals-materials/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/substrate-directed-dimensional-and-phase-control-of-peptide-assemblies-on-two-dimensional-van-der-waals-materials/]]></link>
			<title>Substrate-Directed Dimensional and Phase Control of Peptide Assemblies on Two-Dimensional van der Waals Materials</title>
			<pubDate><![CDATA[Thu, 12 Mar 2026 17:58:46 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/cliploss-and-norm-based-data-selection-methods-for-multimodal-contrastive-learning-2/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/cliploss-and-norm-based-data-selection-methods-for-multimodal-contrastive-learning-2/]]></link>
			<title>CLIPLoss and Norm-Based Data Selection Methods for Multimodal Contrastive Learning</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:59:45 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/efficient-analysis-of-small-angle-scattering-curves-for-large-biomolecular-assemblies-using-monte-carlo-methods/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/efficient-analysis-of-small-angle-scattering-curves-for-large-biomolecular-assemblies-using-monte-carlo-methods/]]></link>
			<title>Efficient analysis of small-angle scattering curves for large biomolecular assemblies using Monte Carlo methods</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:59:26 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/fusion-deep-learning-for-predicting-conductivity-in-electron-doped-organic-polymers/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/fusion-deep-learning-for-predicting-conductivity-in-electron-doped-organic-polymers/]]></link>
			<title>Fusion Deep Learning for Predicting Conductivity in Electron-Doped Organic Polymers</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:58:59 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/unraveling-ground-state-electron-transfer-in-photoredox-n-doping-of-conjugated-polymers-through-real-time-quantum-dynamics/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/unraveling-ground-state-electron-transfer-in-photoredox-n-doping-of-conjugated-polymers-through-real-time-quantum-dynamics/]]></link>
			<title>Unraveling Ground-State Electron Transfer in Photoredox n-Doping of Conjugated Polymers through Real-Time Quantum Dynamics</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:58:27 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/seed_ai_fellowships/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/seed_ai_fellowships/]]></link>
			<title>2026 MEM-C Seed AI Fellowships</title>
			<pubDate><![CDATA[Fri, 20 Mar 2026 22:22:31 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/hydrogel-immobilized-multienzyme-systems-for-cell-free-chemical-bioproduction/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/hydrogel-immobilized-multienzyme-systems-for-cell-free-chemical-bioproduction/]]></link>
			<title>Hydrogel-Immobilized Multienzyme Systems for Cell-Free Chemical Bioproduction</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:57:42 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/bond-centric-modular-design-of-protein-assemblies/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/bond-centric-modular-design-of-protein-assemblies/]]></link>
			<title>Bond-centric modular design of protein assemblies</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:57:15 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/water-debondable-adhesive-polymer-networks-using-hyperbranched-polyglycerols/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/water-debondable-adhesive-polymer-networks-using-hyperbranched-polyglycerols/]]></link>
			<title>Water-Debondable Adhesive Polymer Networks Using Hyperbranched Polyglycerols</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:56:44 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/assembly-of-small-silica-nanoparticles-using-lipid-tethered-dna-bonds/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/assembly-of-small-silica-nanoparticles-using-lipid-tethered-dna-bonds/]]></link>
			<title>Assembly of small silica nanoparticles using lipid-tethered DNA &#8216;bonds&#8217;</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:56:24 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/universal-magnetic-phases-in-twisted-bilayer-mote2/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/universal-magnetic-phases-in-twisted-bilayer-mote2/]]></link>
			<title>Universal Magnetic Phases in Twisted Bilayer MoTe&lt;sub&gt;2&lt;/sub&gt;</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:56:05 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/fiber-alignment-by-mechanical-stretching-and-confined-drying-in-bacterial-cellulose-membranes/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/fiber-alignment-by-mechanical-stretching-and-confined-drying-in-bacterial-cellulose-membranes/]]></link>
			<title>Fiber alignment by mechanical stretching and confined drying in bacterial cellulose membranes</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:55:33 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/modifying-bacterial-cellulose-dispersions-with-deep-eutectic-solvent-and-pectin-to-tune-the-properties-of-open-celled-foams/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/modifying-bacterial-cellulose-dispersions-with-deep-eutectic-solvent-and-pectin-to-tune-the-properties-of-open-celled-foams/]]></link>
			<title>Modifying bacterial cellulose dispersions with deep eutectic solvent and pectin to tune the properties of open-celled foams</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:55:09 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/size-dependent-optical-band-gaps-in-metal-organic-framework-nanoparticles/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/size-dependent-optical-band-gaps-in-metal-organic-framework-nanoparticles/]]></link>
			<title>Size-Dependent Optical Band Gaps in Metal-Organic Framework Nanoparticles</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:53:03 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/synthesis-assembly-and-electrochemical-performance-of-ultrasmall-sb2s3-nanoparticles/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/synthesis-assembly-and-electrochemical-performance-of-ultrasmall-sb2s3-nanoparticles/]]></link>
			<title>Synthesis, assembly, and electrochemical performance of ultrasmall Sb&lt;sub&gt;2&lt;/sub&gt;S&lt;sub&gt;3&lt;/sub&gt; nanoparticles</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:48:46 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/twist-angle-transferable-continuum-model-and-second-flat-chern-band-in-twisted-mote2-and-wse2/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/twist-angle-transferable-continuum-model-and-second-flat-chern-band-in-twisted-mote2-and-wse2/]]></link>
			<title>Twist-angle transferable continuum model and second flat Chern band in twisted MoTe&lt;sub&gt;2&lt;/sub&gt; and WSe&lt;sub&gt;2&lt;/sub&gt;</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:10:16 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/crystal-growth-modulation-of-tin-lead-halide-perovskites-via-chaotropic-agent/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/crystal-growth-modulation-of-tin-lead-halide-perovskites-via-chaotropic-agent/]]></link>
			<title>Crystal Growth Modulation of Tin-Lead Halide Perovskites via Chaotropic Agent</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 01:02:30 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/magnetochiral-anisotropy-on-a-quantum-spin-hall-edge/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/magnetochiral-anisotropy-on-a-quantum-spin-hall-edge/]]></link>
			<title>Magnetochiral anisotropy on a quantum spin Hall edge</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 00:57:43 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/spin-vibronic-coupling-enhanced-intersystem-crossing-beyond-el-sayed-restrictions/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/spin-vibronic-coupling-enhanced-intersystem-crossing-beyond-el-sayed-restrictions/]]></link>
			<title>Spin-Vibronic Coupling Enhanced Intersystem Crossing beyond El-Sayed Restrictions</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 00:56:16 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/magnetocaloric-effect-in-a-microporous-material-using-a-rare-earth-free-hybrid-perovskite/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/magnetocaloric-effect-in-a-microporous-material-using-a-rare-earth-free-hybrid-perovskite/]]></link>
			<title>Magnetocaloric Effect in a Microporous Material Using a Rare-Earth-Free, Hybrid Perovskite</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 00:48:35 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/optical-spin-sensing-and-metamagnetic-phase-control-in-the-2d-van-der-waals-magnet-yb3-doped-crps4/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/optical-spin-sensing-and-metamagnetic-phase-control-in-the-2d-van-der-waals-magnet-yb3-doped-crps4/]]></link>
			<title>Optical Spin Sensing and Metamagnetic Phase Control in the 2D Van der Waals Magnet Yb&lt;sup&gt;3+&lt;/sup&gt;-Doped CrPS&lt;sub&gt;4&lt;/sub&gt;</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 00:43:12 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/advantages-and-challenges-of-deep-eutectic-solvents-applied-to-the-hot-injection-synthesis-of-zinc-selenide-quantum-dots/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/advantages-and-challenges-of-deep-eutectic-solvents-applied-to-the-hot-injection-synthesis-of-zinc-selenide-quantum-dots/]]></link>
			<title>Advantages and Challenges of Deep Eutectic Solvents Applied to the Hot Injection Synthesis of Zinc Selenide Quantum Dots</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 00:40:11 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/increased-voltage-in-cdse-solar-cells-by-mitigation-of-charge-carrier-trapping-due-to-se-vacancies/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/increased-voltage-in-cdse-solar-cells-by-mitigation-of-charge-carrier-trapping-due-to-se-vacancies/]]></link>
			<title>Increased Voltage in CdSe Solar Cells by Mitigation of Charge Carrier Trapping Due to Se Vacancies</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 00:36:10 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/controlling-metal-organic-framework-crystallization-via-computer-vision-and-robotic-handling/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/controlling-metal-organic-framework-crystallization-via-computer-vision-and-robotic-handling/]]></link>
			<title>Controlling metal-organic framework crystallization via computer vision and robotic handling</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 00:33:54 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/]]></link>
			<title>Home</title>
			<pubDate><![CDATA[Mon, 23 Sep 2024 20:47:00 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/hidden-states-and-dynamics-of-fractional-fillings-in-twisted-mote2-bilayers/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/hidden-states-and-dynamics-of-fractional-fillings-in-twisted-mote2-bilayers/]]></link>
			<title>Hidden states and dynamics of fractional fillings in twisted MoTe&lt;sub&gt;2&lt;/sub&gt; bilayers</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:50:19 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/photochemical-aui-aui-bond-formation-a-battle-between-intersystem-crossing-and-internal-conversion/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/photochemical-aui-aui-bond-formation-a-battle-between-intersystem-crossing-and-internal-conversion/]]></link>
			<title>Photochemical Au(I)-Au(I) Bond Formation: A Battle between Intersystem Crossing and Internal Conversion</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:48:01 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/higher-landau-level-analogs-and-signatures-of-non-abelian-states-in-twisted-bilayer-mote2/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/higher-landau-level-analogs-and-signatures-of-non-abelian-states-in-twisted-bilayer-mote2/]]></link>
			<title>Higher Landau-Level Analogs and Signatures of Non-Abelian States in Twisted Bilayer MoTe&lt;sub&gt;2&lt;/sub&gt;</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:45:59 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/effects-of-pyrolysis-temperature-of-macroalgal-biomass-on-the-structure-and-mechanical-properties-of-produced-biochar/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/effects-of-pyrolysis-temperature-of-macroalgal-biomass-on-the-structure-and-mechanical-properties-of-produced-biochar/]]></link>
			<title>Effects of Pyrolysis Temperature of Macroalgal Biomass on the Structure and Mechanical Properties of Produced Biochar</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:43:00 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/luminescent-pressure-sensitive-paints-with-embedded-agsio2-nanoparticles/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/luminescent-pressure-sensitive-paints-with-embedded-agsio2-nanoparticles/]]></link>
			<title>Luminescent Pressure-Sensitive Paints with Embedded Ag@SiO&lt;sub&gt;2&lt;/sub&gt; Nanoparticles</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:37:26 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/band-alignments-conduction-band-edges-and-intralayer-bandgap-renormalisation-in-mose2-wse2-heterobilayers/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/band-alignments-conduction-band-edges-and-intralayer-bandgap-renormalisation-in-mose2-wse2-heterobilayers/]]></link>
			<title>Band alignments, conduction band edges and intralayer bandgap renormalisation in MoSe&lt;sub&gt;2&lt;/sub&gt;/WSe&lt;sub&gt;2&lt;/sub&gt; heterobilayers</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:36:57 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/strain-tuning-of-vestigial-three-state-potts-nematicity-in-a-correlated-antiferromagnet/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/strain-tuning-of-vestigial-three-state-potts-nematicity-in-a-correlated-antiferromagnet/]]></link>
			<title>Strain Tuning of Vestigial Three-State Potts Nematicity in a Correlated Antiferromagnet</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:36:40 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/state-interaction-for-relativistic-four-component-methods-choose-the-right-zeroth-order-hamiltonian-for-late-row-elements/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/state-interaction-for-relativistic-four-component-methods-choose-the-right-zeroth-order-hamiltonian-for-late-row-elements/]]></link>
			<title>State Interaction for Relativistic Four-Component Methods: Choose the Right Zeroth-Order Hamiltonian for Late-Row Elements</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:36:26 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/caught-in-the-act-of-substitution-interadsorbate-effects-on-an-atomically-precise-fe-co-se-nanocluster/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/caught-in-the-act-of-substitution-interadsorbate-effects-on-an-atomically-precise-fe-co-se-nanocluster/]]></link>
			<title>Caught in the Act of Substitution: Interadsorbate Effects on an Atomically Precise Fe/Co/Se Nanocluster</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:36:12 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/polarization-driven-band-topology-evolution-in-twisted-mote2-and-wse2/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/polarization-driven-band-topology-evolution-in-twisted-mote2-and-wse2/]]></link>
			<title>Polarization-driven band topology evolution in twisted MoTe&lt;sub&gt;2&lt;/sub&gt; and WSe&lt;sub&gt;2&lt;/sub&gt;</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:35:57 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/dirac-coulomb-breit-molecular-mean-field-exact-two-component-relativistic-equation-of-motion-coupled-cluster-theory/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/dirac-coulomb-breit-molecular-mean-field-exact-two-component-relativistic-equation-of-motion-coupled-cluster-theory/]]></link>
			<title>Dirac–Coulomb–Breit Molecular Mean-Field Exact-Two-Component Relativistic Equation-of-Motion Coupled-Cluster Theory</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:35:11 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/overdestabilization-vs-overstabilization-in-the-theoretical-analysis-of-f-orbital-covalency/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/overdestabilization-vs-overstabilization-in-the-theoretical-analysis-of-f-orbital-covalency/]]></link>
			<title>Overdestabilization vs Overstabilization in the Theoretical Analysis of f-Orbital Covalency</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:34:45 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/conduction-band-replicas-in-a-2d-moire-semiconductor-heterobilayer/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/conduction-band-replicas-in-a-2d-moire-semiconductor-heterobilayer/]]></link>
			<title>Conduction Band Replicas in a 2D Moire Semiconductor Heterobilayer</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:33:44 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://mem-c.washington.edu/publications/proximity-induced-exchange-interaction-a-new-pathway-for-quantum-sensing-using-spin-centers-in-hexagonal-boron-nitride/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/proximity-induced-exchange-interaction-a-new-pathway-for-quantum-sensing-using-spin-centers-in-hexagonal-boron-nitride/]]></link>
			<title>Proximity-Induced Exchange Interaction: A New Pathway for Quantum Sensing Using Spin Centers in Hexagonal Boron Nitride</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:33:28 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://mem-c.washington.edu/people/peter-pauzauskie/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/people/peter-pauzauskie/]]></link>
			<title>Peter Pauzauskie</title>
			<pubDate><![CDATA[Wed, 14 Jan 2026 01:08:18 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://mem-c.washington.edu/publications/absence-of-weyl-nodes-in-eucd2as2-revealed-by-the-carrier-density-dependence-of-the-anomalous-hall-effect/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/absence-of-weyl-nodes-in-eucd2as2-revealed-by-the-carrier-density-dependence-of-the-anomalous-hall-effect/]]></link>
			<title>Absence of Weyl nodes in &lt;math&gt;&lt;mrow&gt;&lt;msub&gt;&lt;mi&gt;EuCd&lt;/mi&gt;&lt;mn&gt;2&lt;/mn&gt;&lt;/msub&gt;&lt;msub&gt;&lt;mi&gt;As&lt;/mi&gt;&lt;mn&gt;2&lt;/mn&gt;&lt;/msub&gt;&lt;/mrow&gt;&lt;/math&gt; revealed by the carrier density dependence of the anomalous Hall effect</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:33:08 +0000]]></pubDate>
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			<guid><![CDATA[https://mem-c.washington.edu/publications/comparison-of-variational-and-perturbative-spin-orbit-coupling-within-two-component-casscf/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/comparison-of-variational-and-perturbative-spin-orbit-coupling-within-two-component-casscf/]]></link>
			<title>Comparison of Variational and Perturbative Spin–Orbit Coupling within Two-Component CASSCF</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:32:47 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://mem-c.washington.edu/publications/leveraging-cation-exchange-in-inp-magic-sized-clusters-to-access-coinage-metal-phosphide-nanocrystals/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/leveraging-cation-exchange-in-inp-magic-sized-clusters-to-access-coinage-metal-phosphide-nanocrystals/]]></link>
			<title>Leveraging Cation Exchange in InP Magic-Sized Clusters To Access Coinage Metal Phosphide Nanocrystals</title>
			<pubDate><![CDATA[Fri, 30 Jan 2026 23:32:16 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://mem-c.washington.edu/facilities/contacts/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/facilities/contacts/]]></link>
			<title>Contacts</title>
			<pubDate><![CDATA[Thu, 29 Jan 2026 21:31:22 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://mem-c.washington.edu/publications/data-driven-microstructural-optimization-of-ag-bi-i-perovskite-inspired-materials/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/data-driven-microstructural-optimization-of-ag-bi-i-perovskite-inspired-materials/]]></link>
			<title>Data-driven microstructural optimization of Ag-Bi-I perovskite-inspired materials</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 00:46:53 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://mem-c.washington.edu/people/ting-cao/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/people/ting-cao/]]></link>
			<title>Ting Cao</title>
			<pubDate><![CDATA[Wed, 14 Jan 2026 01:03:08 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://mem-c.washington.edu/publications/microscopic-signatures-of-topology-in-twisted-mote2/]]></guid>
			<link><![CDATA[https://mem-c.washington.edu/publications/microscopic-signatures-of-topology-in-twisted-mote2/]]></link>
			<title>Microscopic signatures of topology in twisted MoTe&lt;sub&gt;2&lt;/sub&gt;</title>
			<pubDate><![CDATA[Sat, 31 Jan 2026 00:44:48 +0000]]></pubDate>
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