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Zhangquan Peng

Researcher at Chinese Academy of Sciences

Publications -  108
Citations -  6474

Zhangquan Peng is an academic researcher from Chinese Academy of Sciences. The author has contributed to research in topics: Battery (electricity) & Electrolyte. The author has an hindex of 38, co-authored 108 publications receiving 4322 citations. Previous affiliations of Zhangquan Peng include Wuyi University & University of Science and Technology of China.

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Oxygen Reactions in a Non-Aqueous Li+ Electrolyte†

TL;DR: In situ spectroscopic data are presented that provide direct evidence that LiO2 is indeed an intermediate on O2 reduction, which then disproportionates to the final product Li2O2.
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Eutectic‐Derived Mesoporous Ni‐Fe‐O Nanowire Network Catalyzing Oxygen Evolution and Overall Water Splitting

TL;DR: Based on eutectic reaction and dealloying inheritance effect, a novel Ni-Fe-O-based composite with a unique mesoporous nanowire network structure is designed and synthesized in this paper.
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Bismuthene for highly efficient carbon dioxide electroreduction reaction

TL;DR: A large-scale synthesis of free-standing Bismuthene is shown and its electrocatalytic activity for CO 2 reduction to formate is demonstrated, suggesting that selective formation of HCOO − indeed can proceed easily on BismUThene (111) facet due to the unique compressive strain.
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Boosting Potassium-Ion Battery Performance by Encapsulating Red Phosphorus in Free-Standing Nitrogen-Doped Porous Hollow Carbon Nanofibers.

TL;DR: This work realized unprecedented long cycle life with high reversible capacity as well as outstanding rate capability for KIBs by embedding red P into free-standing nitrogen-doped porous hollow carbon nanofibers (red P@N-PHCNFs).
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Three-Dimensional Ordered Macroporous Metal-Organic Framework Single Crystal-Derived Nitrogen-Doped Hierarchical Porous Carbon for High-Performance Potassium-Ion Batteries.

TL;DR: This 3D interpenetrating structure demonstrates the superiority for energy storage applications and the Galvanostatic intermittent titration (GITT) measurement and the first-principles calculations reveal that the interconnected macroporous are more beneficial to the diffusion of the K+.