Atomically Resolved Defect-Engineering Scattering Potential in 2D Semiconductors. [PDF]
Chen HY +8 more
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Scalable Defect Engineering of Pt<sub>3</sub>Te<sub>4</sub> Nanosheets Activates an Electro-Switchable and Termination-Dependent PtO<sub>2</sub> Skin for Low-Overpotential Hydrogen Evolution. [PDF]
Dadiani T +18 more
europepmc +1 more source
Te Vacancy Defect Engineering on Fe<sub>3</sub>GeTe<sub>2</sub> (001) Basal Planes for Enhanced Oxygen Evolution Reaction: A First-Principles Study. [PDF]
Gao Y, Su W, Qiu Y, Shan D, Pan J.
europepmc +1 more source
Defect Engineering with Rational Dopants Modulation for High-Temperature Energy Harvesting in Lead-Free Piezoceramics. [PDF]
Xi K, Guo J, Zheng M, Zhu M, Hou Y.
europepmc +1 more source
Sulfur defect engineering controls Li<sub>2</sub>S crystal orientation towards dendrite-free lithium metal batteries. [PDF]
Lin JX +18 more
europepmc +1 more source
Synergistic Nitrogen-Doping and Defect Engineering in Hard Carbon: Unlocking Ultrahigh Rate Capability and Long-Cycling Stability for Sodium-Ion Battery Anodes. [PDF]
Li N, Li H, Huang H.
europepmc +1 more source
Fine-Tuning Porous Structure of Zirconium-Based Metal-Organic Frameworks for Efficient Separation and Purification of Astaxanthin by Defect Engineering. [PDF]
Na X, Xing S, Tan M, Su W.
europepmc +1 more source
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Defect engineering in nanozymes
Materials Today, 2022Abstract Due to the high stability, various synthesis strategies, low cost, and tunable performance, nanozymes have gained much attention as the replacement of natural enzymes. To widen the application, highly active, specific, and robust nanozymes are in need.
Yu Wu, Wenling Gu, Lei Jiao
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