Graphene oxide enhances root growth and low-temperature tolerance in maize. [PDF]
Zhang X, Sun H, Huang W, Guo W.
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This review critically examines thermal transport and radiative properties of ultra‐high temperature ceramics for hypersonic flight, advanced nuclear systems, and next‐generation energy conversion devices. It explores phonon–photon–electron interactions, microstructural engineering, thermoelectric conversion, and machine learning‐accelerated multiscale
Zhipeng Pei +8 more
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Investigation of Measurement Cycle Reproducibility and Dynamic Resistance-Switching Capability in Reduced Graphene Oxide. [PDF]
Barreto da Silva R +6 more
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Reduced-Graphene Oxide Nanofiltration Membranes Intercalated by Conjugated Polyaromatics: Towards High Monovalent Salt Rejections. [PDF]
Sonker M, Nair S.
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Reduced Graphene Oxide and Nickel Nanoparticle Nanocomposites: Tailoring the Nanoparticle Size for Enhanced Glucose Electrochemical Sensors. [PDF]
Silva AE +5 more
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Tailoring the Microstructure and Mechanical Properties of Phenolic Aerogels with Graphene Oxide. [PDF]
Hu C +7 more
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Water-Resistant Antibacterial Coatings Using Cetylpyridinium Chloride - Graphene Oxide Composites. [PDF]
Okubo K +5 more
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Graphene Oxide Potentiates Induction Efficiency and Functional Maturation of Induced Mammary Epithelial Cells. [PDF]
Lei Z +6 more
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Nanotoxicity of Graphene and Graphene Oxide
Chemical Research in Toxicology, 2014Graphene and its derivatives are promising candidates for important biomedical applications because of their versatility. The prospective use of graphene-based materials in a biological context requires a detailed comprehension of the toxicity of these materials.
Amedea B, Seabra +4 more
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