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			<pubDate><![CDATA[Sun, 03 May 2026 04:42:07 +0000]]></pubDate>
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			<guid><![CDATA[https://canhlab.net/enhancement-of-thermal-conductivity-of-poly-methylmethacrylate-composites-at-low-loading-of-copper-nanowires/]]></guid>
			<link><![CDATA[https://canhlab.net/enhancement-of-thermal-conductivity-of-poly-methylmethacrylate-composites-at-low-loading-of-copper-nanowires/]]></link>
			<title>Enhancement of thermal conductivity of poly (methylmethacrylate) composites at low loading of copper nanowires</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:55 +0000]]></pubDate>
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			<guid><![CDATA[https://canhlab.net/phase-morphology-dependence-of-ionic-conductivity-and-oxidative-stability-in-fluorinated-ether-solid-state-electrolytes/]]></guid>
			<link><![CDATA[https://canhlab.net/phase-morphology-dependence-of-ionic-conductivity-and-oxidative-stability-in-fluorinated-ether-solid-state-electrolytes/]]></link>
			<title>Phase Morphology Dependence of Ionic Conductivity and Oxidative Stability in Fluorinated Ether Solid-State Electrolytes</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:49 +0000]]></pubDate>
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			<guid><![CDATA[https://canhlab.net/impact-of-processing-methodology-on-the-performance-of-hybrid-sulfide-polymer-solid-state-electrolytes-for-lithium-metal-batteries/]]></guid>
			<link><![CDATA[https://canhlab.net/impact-of-processing-methodology-on-the-performance-of-hybrid-sulfide-polymer-solid-state-electrolytes-for-lithium-metal-batteries/]]></link>
			<title>Impact of Processing Methodology on the Performance of Hybrid Sulfide-Polymer Solid State Electrolytes for Lithium Metal Batteries</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:43 +0000]]></pubDate>
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			<guid><![CDATA[https://canhlab.net/porous-copper-flake-based-polydimethylsiloxane-foams-as-thermostable-electromagnetic-interference-shielding-materials-for-soft-electronics/]]></guid>
			<link><![CDATA[https://canhlab.net/porous-copper-flake-based-polydimethylsiloxane-foams-as-thermostable-electromagnetic-interference-shielding-materials-for-soft-electronics/]]></link>
			<title>Porous Copper-Flake-Based Polydimethylsiloxane Foams as Thermostable Electromagnetic Interference Shielding Materials for Soft Electronics</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:36 +0000]]></pubDate>
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			<guid><![CDATA[https://canhlab.net/chemically-crosslinked-cellulose-nanofibers-with-fluorinated-carbon-nanotubes-for-enhanced-mechanical-flexibility-and-flame-retardancy-of-thermal-conductive-nanocomposite-films/]]></guid>
			<link><![CDATA[https://canhlab.net/chemically-crosslinked-cellulose-nanofibers-with-fluorinated-carbon-nanotubes-for-enhanced-mechanical-flexibility-and-flame-retardancy-of-thermal-conductive-nanocomposite-films/]]></link>
			<title>Chemically Crosslinked Cellulose Nanofibers with Fluorinated Carbon Nanotubes for Enhanced Mechanical Flexibility and Flame Retardancy of Thermal Conductive Nanocomposite Films</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:32 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/fluorine-driven-interfacial-compatibility-enhances-thermal-properties-of-thermoconductive-fluorinated-graphene-nanoplatelet-based-polyvinylidene-fluoride-co-hexafluoropropylene-nanocomposites/]]></guid>
			<link><![CDATA[https://canhlab.net/fluorine-driven-interfacial-compatibility-enhances-thermal-properties-of-thermoconductive-fluorinated-graphene-nanoplatelet-based-polyvinylidene-fluoride-co-hexafluoropropylene-nanocomposites/]]></link>
			<title>Fluorine-Driven Interfacial Compatibility Enhances Thermal Properties of Thermoconductive Fluorinated Graphene Nanoplatelet-Based Poly(Vinylidene Fluoride-Co-Hexafluoropropylene) Nanocomposites</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:29 +0000]]></pubDate>
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			<guid><![CDATA[https://canhlab.net/solvent-free-alkali-based-low-melting-molten-salt-electrolyte-for-dual-carbon-battery/]]></guid>
			<link><![CDATA[https://canhlab.net/solvent-free-alkali-based-low-melting-molten-salt-electrolyte-for-dual-carbon-battery/]]></link>
			<title>Solvent-Free Alkali-Based Low Melting Molten Salt Electrolyte for Dual-Carbon Battery</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:23 +0000]]></pubDate>
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			<guid><![CDATA[https://canhlab.net/hybrid-thermal-management-film-and-method-of-fabrication-for-the-same/]]></guid>
			<link><![CDATA[https://canhlab.net/hybrid-thermal-management-film-and-method-of-fabrication-for-the-same/]]></link>
			<title>Hybrid thermal management film and method of fabrication for the same</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:21 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/in-situ-inorganic-and-polymer-synthesis-for-conformal-hybrid-sulfide-type-solid-state-electrolytes/]]></guid>
			<link><![CDATA[https://canhlab.net/in-situ-inorganic-and-polymer-synthesis-for-conformal-hybrid-sulfide-type-solid-state-electrolytes/]]></link>
			<title>In Situ Inorganic and Polymer Synthesis for Conformal Hybrid Sulfide-Type Solid State Electrolytes</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:15 +0000]]></pubDate>
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			<guid><![CDATA[https://canhlab.net/flexible-thermal-conductive-electromagnetic-interference-shielding-of-liquid-metal‐based-silicon-polymer-composites-strain-level-effect/]]></guid>
			<link><![CDATA[https://canhlab.net/flexible-thermal-conductive-electromagnetic-interference-shielding-of-liquid-metal‐based-silicon-polymer-composites-strain-level-effect/]]></link>
			<title>Flexible Thermal Conductive Electromagnetic Interference Shielding of Liquid Metal‐Based Silicon Polymer Composites: Strain Level Effect</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:11 +0000]]></pubDate>
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			<guid><![CDATA[https://canhlab.net/ultratough-and-self‐healable-electromagnetic-interference-shielding-materials-with-sandwiched-silver-nanowires-in-polyurethane-composite-films/]]></guid>
			<link><![CDATA[https://canhlab.net/ultratough-and-self‐healable-electromagnetic-interference-shielding-materials-with-sandwiched-silver-nanowires-in-polyurethane-composite-films/]]></link>
			<title>Ultratough and self‐healable electromagnetic interference shielding materials with sandwiched silver nanowires in polyurethane composite films</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:09 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/probing-the-influence-of-steric-hindrance-in-nonfluorinated-ether-electrolytes-for-lithium-metal-batteries/]]></guid>
			<link><![CDATA[https://canhlab.net/probing-the-influence-of-steric-hindrance-in-nonfluorinated-ether-electrolytes-for-lithium-metal-batteries/]]></link>
			<title>Probing the influence of steric hindrance in nonfluorinated ether electrolytes for lithium metal batteries</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:28:04 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/multilayered-silver-nanowires-and-graphene-fluoride-based-aramid-nanofibers-for-excellent-thermoconductive-electromagnetic-interference-shielding-materials-with-low-reflection/]]></guid>
			<link><![CDATA[https://canhlab.net/multilayered-silver-nanowires-and-graphene-fluoride-based-aramid-nanofibers-for-excellent-thermoconductive-electromagnetic-interference-shielding-materials-with-low-reflection/]]></link>
			<title>Multilayered silver nanowires and graphene fluoride-based aramid nanofibers for excellent thermoconductive electromagnetic interference shielding materials with low-reflection</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:27:58 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/layer-by-layer-assembly-of-boron-arsenide-and-copper-nanoflake-based-aramid-nanofibers-for-thermoconductive-electromagnetic-interference-shielding-materials-with-superior-mechanical-flexibility-and-fl/]]></guid>
			<link><![CDATA[https://canhlab.net/layer-by-layer-assembly-of-boron-arsenide-and-copper-nanoflake-based-aramid-nanofibers-for-thermoconductive-electromagnetic-interference-shielding-materials-with-superior-mechanical-flexibility-and-fl/]]></link>
			<title>Layer-by-layer assembly of boron arsenide and copper nanoflake-based aramid nanofibers for thermoconductive electromagnetic interference shielding materials with superior mechanical flexibility and flame retardancy</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:27:52 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/plant-mediated-eco-friendly-synthesis-of-platinum-nanoparticles-and-their-applications/]]></guid>
			<link><![CDATA[https://canhlab.net/plant-mediated-eco-friendly-synthesis-of-platinum-nanoparticles-and-their-applications/]]></link>
			<title>Plant-mediated eco-friendly synthesis of platinum nanoparticles and their applications</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:27:50 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/in-situ-sintered-silver-decorated-3d-structure-of-cellulose-scaffold-for-highly-thermoconductive-electromagnetic-interference-shielding-epoxy-nanocomposites/]]></guid>
			<link><![CDATA[https://canhlab.net/in-situ-sintered-silver-decorated-3d-structure-of-cellulose-scaffold-for-highly-thermoconductive-electromagnetic-interference-shielding-epoxy-nanocomposites/]]></link>
			<title>In situ sintered silver decorated 3D structure of cellulose scaffold for highly thermoconductive electromagnetic interference shielding epoxy nanocomposites</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:27:44 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/enhanced-thermal-conductivity-of-pressure-sensitive-adhesives-using-hybrid-fillers-of-sic-microparticle-and-sic-nanoparticle-grafted-graphene-oxide/]]></guid>
			<link><![CDATA[https://canhlab.net/enhanced-thermal-conductivity-of-pressure-sensitive-adhesives-using-hybrid-fillers-of-sic-microparticle-and-sic-nanoparticle-grafted-graphene-oxide/]]></link>
			<title>Enhanced thermal conductivity of pressure sensitive adhesives using hybrid fillers of SiC microparticle and SiC nanoparticle grafted graphene oxide</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:27:40 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/ultrathin-aramid-nanofiber-composites-with-alternating-multilayered-structure-of-silver-nanowires-and-boron-arsenide-toward-superior-electrically-insulating-thermoconductive-electromagnetic-interfere/]]></guid>
			<link><![CDATA[https://canhlab.net/ultrathin-aramid-nanofiber-composites-with-alternating-multilayered-structure-of-silver-nanowires-and-boron-arsenide-toward-superior-electrically-insulating-thermoconductive-electromagnetic-interfere/]]></link>
			<title>Ultrathin Aramid Nanofiber Composites with Alternating Multilayered Structure of Silver Nanowires and Boron Arsenide: Toward Superior Electrically Insulating Thermoconductive Electromagnetic Interference Shielding Materials</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:27:33 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/improved-mechanical-strength-of-dicatechol-crosslinked-mxene-films-for-electromagnetic-interference-shielding-performance/]]></guid>
			<link><![CDATA[https://canhlab.net/improved-mechanical-strength-of-dicatechol-crosslinked-mxene-films-for-electromagnetic-interference-shielding-performance/]]></link>
			<title>Improved mechanical strength of dicatechol crosslinked MXene films for electromagnetic interference shielding performance</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:27:29 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/fluorination-promotes-lithium-salt-dissolution-in-borate-esters-for-lithium-metal-batteries/]]></guid>
			<link><![CDATA[https://canhlab.net/fluorination-promotes-lithium-salt-dissolution-in-borate-esters-for-lithium-metal-batteries/]]></link>
			<title>Fluorination promotes lithium salt dissolution in borate esters for lithium metal batteries</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:27:25 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/a-transition-metal-and-solvent-free-dual-graphite-battery/]]></guid>
			<link><![CDATA[https://canhlab.net/a-transition-metal-and-solvent-free-dual-graphite-battery/]]></link>
			<title>A transition-metal-and-solvent-free dual-graphite battery</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:26:50 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/a-transition-metal-and-solvent-free-dual-graphite-battery-for-grid-scale-energy-storage/]]></guid>
			<link><![CDATA[https://canhlab.net/a-transition-metal-and-solvent-free-dual-graphite-battery-for-grid-scale-energy-storage/]]></link>
			<title>A transition-metal-and-solvent-free dual-graphite battery for grid-scale energy storage</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:26:40 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/energy-storage-film-and-method-of-manufacturing-same/]]></guid>
			<link><![CDATA[https://canhlab.net/energy-storage-film-and-method-of-manufacturing-same/]]></link>
			<title>Energy storage film and method of manufacturing same</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:26:33 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/green-and-cost-effective-nanomaterials-synthesis-from-aquatic-plants-and-their-applications/]]></guid>
			<link><![CDATA[https://canhlab.net/green-and-cost-effective-nanomaterials-synthesis-from-aquatic-plants-and-their-applications/]]></link>
			<title>Green and Cost-Effective Nanomaterials Synthesis from Aquatic Plants and Their Applications</title>
			<pubDate><![CDATA[Sun, 03 May 2026 04:26:27 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/molecular-structure-optimization-of-fluorinated-ether-electrolyte-for-all-temperature-fast-charging-lithium-ion-battery/]]></guid>
			<link><![CDATA[https://canhlab.net/molecular-structure-optimization-of-fluorinated-ether-electrolyte-for-all-temperature-fast-charging-lithium-ion-battery/]]></link>
			<title>Molecular structure optimization of fluorinated ether electrolyte for all temperature fast charging lithium-ion battery</title>
			<pubDate><![CDATA[Sun, 03 May 2026 03:18:08 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/pressure-sensitive-adhesive-composites-with-a-hydrophobic-form-of-graphene-oxide-for-enhanced-thermal-conductivity/]]></guid>
			<link><![CDATA[https://canhlab.net/pressure-sensitive-adhesive-composites-with-a-hydrophobic-form-of-graphene-oxide-for-enhanced-thermal-conductivity/]]></link>
			<title>Pressure-sensitive adhesive composites with a hydrophobic form of graphene oxide for enhanced thermal conductivity</title>
			<pubDate><![CDATA[Sun, 03 May 2026 03:16:03 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/thermoconductive-graphene-fluoride-cross-linked-aramid-nanofiber-composite-films-with-enhanced-mechanical-flexibility-and-flammable-retardancy-for-thermal-management-in-wearable-electronics/]]></guid>
			<link><![CDATA[https://canhlab.net/thermoconductive-graphene-fluoride-cross-linked-aramid-nanofiber-composite-films-with-enhanced-mechanical-flexibility-and-flammable-retardancy-for-thermal-management-in-wearable-electronics/]]></link>
			<title>Thermoconductive Graphene Fluoride Cross-Linked Aramid Nanofiber Composite Films with Enhanced Mechanical Flexibility and Flammable Retardancy for Thermal Management in Wearable Electronics</title>
			<pubDate><![CDATA[Sun, 03 May 2026 03:13:45 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/poly-methyl-methacrylate‐functionalized-reduced-graphene-oxide‐based-core-shell-structured-beads-for-thermally-conductive-epoxy-composites/]]></guid>
			<link><![CDATA[https://canhlab.net/poly-methyl-methacrylate‐functionalized-reduced-graphene-oxide‐based-core-shell-structured-beads-for-thermally-conductive-epoxy-composites/]]></link>
			<title>Poly (methyl methacrylate)‐functionalized reduced graphene oxide‐based core–shell structured beads for thermally conductive epoxy composites</title>
			<pubDate><![CDATA[Sun, 03 May 2026 03:11:27 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/vertically-interconnected-network-of-graphene-fluoride-for-highly-thermoconductive-and-electrically-insulating-epoxy-composites/]]></guid>
			<link><![CDATA[https://canhlab.net/vertically-interconnected-network-of-graphene-fluoride-for-highly-thermoconductive-and-electrically-insulating-epoxy-composites/]]></link>
			<title>Vertically interconnected network of graphene fluoride for highly thermoconductive and electrically insulating epoxy composites</title>
			<pubDate><![CDATA[Sun, 03 May 2026 03:07:45 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/thermally-conductive-adhesives-from-covalent-bonding-of-reduced-graphene-oxide-to-acrylic-copolymer/]]></guid>
			<link><![CDATA[https://canhlab.net/thermally-conductive-adhesives-from-covalent-bonding-of-reduced-graphene-oxide-to-acrylic-copolymer/]]></link>
			<title>Thermally conductive adhesives from covalent-bonding of reduced graphene oxide to acrylic copolymer</title>
			<pubDate><![CDATA[Sun, 03 May 2026 03:04:09 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/effect-of-aspect-ratio-of-vertically-aligned-copper-nanowires-in-the-presence-of-cellulose-nanofibers-on-the-thermal-conductivity-of-epoxy-composites/]]></guid>
			<link><![CDATA[https://canhlab.net/effect-of-aspect-ratio-of-vertically-aligned-copper-nanowires-in-the-presence-of-cellulose-nanofibers-on-the-thermal-conductivity-of-epoxy-composites/]]></link>
			<title>Effect of aspect ratio of vertically aligned copper nanowires in the presence of cellulose nanofibers on the thermal conductivity of epoxy composites</title>
			<pubDate><![CDATA[Sun, 03 May 2026 03:01:44 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/bio-inspired-sustainable-fabrication-of-cdo-nanoparticles-using-citrus-sinensis-peel-extract-for-photocatalytic-degradation-of-rhodamine-b-dye/]]></guid>
			<link><![CDATA[https://canhlab.net/bio-inspired-sustainable-fabrication-of-cdo-nanoparticles-using-citrus-sinensis-peel-extract-for-photocatalytic-degradation-of-rhodamine-b-dye/]]></link>
			<title>Bio-inspired Sustainable Fabrication of CdO Nanoparticles Using Citrus sinensis Peel Extract for Photocatalytic Degradation of Rhodamine B Dye</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:59:42 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/janus-polyurethane-composite-film-with-highly-aligned-graphene-fluoride-and-liquid-metal-a-versatile-technique-for-thermal-management-and-electromagnetic-interference-shielding/]]></guid>
			<link><![CDATA[https://canhlab.net/janus-polyurethane-composite-film-with-highly-aligned-graphene-fluoride-and-liquid-metal-a-versatile-technique-for-thermal-management-and-electromagnetic-interference-shielding/]]></link>
			<title>Janus polyurethane composite film with highly aligned graphene fluoride and liquid metal: A versatile technique for thermal management and electromagnetic interference shielding</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:56:53 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/thermoconductive-ultralong-copper-nanowire-based-aramid-nanofiber-nanopapers-for-electromagnetic-interference-shielding/]]></guid>
			<link><![CDATA[https://canhlab.net/thermoconductive-ultralong-copper-nanowire-based-aramid-nanofiber-nanopapers-for-electromagnetic-interference-shielding/]]></link>
			<title>Thermoconductive Ultralong Copper Nanowire-Based Aramid Nanofiber Nanopapers for Electromagnetic Interference Shielding</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:54:48 +0000]]></pubDate>
		</item>
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			<guid><![CDATA[https://canhlab.net/core-shell-structured-carbon-nanotube-poly-methylmethacrylate-beads-as-thermo-conductive-filler-in-epoxy-composites/]]></guid>
			<link><![CDATA[https://canhlab.net/core-shell-structured-carbon-nanotube-poly-methylmethacrylate-beads-as-thermo-conductive-filler-in-epoxy-composites/]]></link>
			<title>Core-shell structured carbon nanotube-poly (methylmethacrylate) beads as thermo-conductive filler in epoxy composites</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:52:45 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/electrolytomics-a-unified-big-data-approach-for-electrolyte-design-and-discovery/]]></guid>
			<link><![CDATA[https://canhlab.net/electrolytomics-a-unified-big-data-approach-for-electrolyte-design-and-discovery/]]></link>
			<title>Electrolytomics: a unified big data approach for electrolyte design and discovery</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:49:05 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/scalable-graphene-fluoride-sandwiched-aramid-nanofiber-paper-with-superior-high-temperature-capacitive-energy-storage/]]></guid>
			<link><![CDATA[https://canhlab.net/scalable-graphene-fluoride-sandwiched-aramid-nanofiber-paper-with-superior-high-temperature-capacitive-energy-storage/]]></link>
			<title>Scalable graphene fluoride sandwiched aramid nanofiber paper with superior high-temperature capacitive energy storage</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:47:10 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/low-melting-alkali-based-molten-salt-electrolytes-for-solvent-free-lithium-metal-batteries/]]></guid>
			<link><![CDATA[https://canhlab.net/low-melting-alkali-based-molten-salt-electrolytes-for-solvent-free-lithium-metal-batteries/]]></link>
			<title>Low melting alkali-based molten salt electrolytes for solvent-free lithium-metal batteries</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:42:58 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/multilayered-graphene-fluoride-and-ti3c2tx-mxene-based-aramid-nanofiber-films-with-excellent-thermal-conductivity-and-electromagnetic-interference-shielding-performance/]]></guid>
			<link><![CDATA[https://canhlab.net/multilayered-graphene-fluoride-and-ti3c2tx-mxene-based-aramid-nanofiber-films-with-excellent-thermal-conductivity-and-electromagnetic-interference-shielding-performance/]]></link>
			<title>Multilayered graphene fluoride and Ti3C2Tx MXene-based aramid nanofiber films with excellent thermal conductivity and electromagnetic interference shielding performance</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:41:01 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/green-synthesis-of-plant-assisted-manganese-based-nanoparticles-and-their-various-applications/]]></guid>
			<link><![CDATA[https://canhlab.net/green-synthesis-of-plant-assisted-manganese-based-nanoparticles-and-their-various-applications/]]></link>
			<title>Green synthesis of plant-assisted manganese-based nanoparticles and their various applications</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:39:05 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/thermally-insulating-carbon-nanotubes-and-copper-ferrite-based-porous-polydimethylsiloxane-foams-for-absorption-dominant-electromagnetic-interference-shielding-performance/]]></guid>
			<link><![CDATA[https://canhlab.net/thermally-insulating-carbon-nanotubes-and-copper-ferrite-based-porous-polydimethylsiloxane-foams-for-absorption-dominant-electromagnetic-interference-shielding-performance/]]></link>
			<title>Thermally insulating carbon nanotubes and copper ferrite based porous polydimethylsiloxane foams for absorption-dominant electromagnetic interference shielding performance</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:36:55 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/3d-printing-of-copper-particles-and-poly-methyl-methacrylate-beads-containing-poly-lactic-acid-composites-for-enhancing-thermomechanical-properties/]]></guid>
			<link><![CDATA[https://canhlab.net/3d-printing-of-copper-particles-and-poly-methyl-methacrylate-beads-containing-poly-lactic-acid-composites-for-enhancing-thermomechanical-properties/]]></link>
			<title>3D printing of copper particles and poly (methyl methacrylate) beads containing poly (lactic acid) composites for enhancing thermomechanical properties</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:34:34 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/recent-developments-on-magnetically-separable-ferrite‐based-nanomaterials-for-removal-of-environmental-pollutants/]]></guid>
			<link><![CDATA[https://canhlab.net/recent-developments-on-magnetically-separable-ferrite‐based-nanomaterials-for-removal-of-environmental-pollutants/]]></link>
			<title>Recent developments on magnetically separable ferrite‐based nanomaterials for removal of environmental pollutants</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:31:47 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/ultralight-covalently-interconnected-silicon-carbide-aerofoam-for-high-performance-thermally-conductive-epoxy-composites/]]></guid>
			<link><![CDATA[https://canhlab.net/ultralight-covalently-interconnected-silicon-carbide-aerofoam-for-high-performance-thermally-conductive-epoxy-composites/]]></link>
			<title>Ultralight covalently interconnected silicon carbide aerofoam for high performance thermally conductive epoxy composites</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:29:16 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/silver-nanowires-decorated-recycled-cigarette-filters-based-epoxy-composites-with-high-through-plane-thermal-conductivity-and-efficient-electromagnetic-interference-shielding/]]></guid>
			<link><![CDATA[https://canhlab.net/silver-nanowires-decorated-recycled-cigarette-filters-based-epoxy-composites-with-high-through-plane-thermal-conductivity-and-efficient-electromagnetic-interference-shielding/]]></link>
			<title>Silver nanowires decorated recycled cigarette filters based epoxy composites with high through-plane thermal conductivity and efficient electromagnetic interference shielding</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:26:25 +0000]]></pubDate>
		</item>
					<item>
			<guid><![CDATA[https://canhlab.net/copper-flake-coated-cellulose-scaffold-to-construct-segregated-network-for-enhancing-thermal-conductivity-of-epoxy-composites/]]></guid>
			<link><![CDATA[https://canhlab.net/copper-flake-coated-cellulose-scaffold-to-construct-segregated-network-for-enhancing-thermal-conductivity-of-epoxy-composites/]]></link>
			<title>Copper flake-coated cellulose scaffold to construct segregated network for enhancing thermal conductivity of epoxy composites</title>
			<pubDate><![CDATA[Sun, 03 May 2026 02:24:24 +0000]]></pubDate>
		</item>
				</channel>
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