Transient and general synthesis of high-density and ultrasmall nanoparticles on two-dimensional porous carbon via coordinated carbothermal shock
Wenhui Shi,Zezhou Li,Zhihao Gong,Zihui Liang,Huan Liu,Ye-Chuang Han,Hu Niu,Bo Song,Xiao-juan Shi,Jihan Zhou,Hua Wang,Bao Yu Xia,Yonggang Yao,Zhongjun Tian +13 more
TL;DR: In this article , the in situ metal-ligand coordination and local ordering during millisecond-scale pyrolysis play a crucial role in kinetically dominated fabrication and stabilization of high-density nanoparticles on two-dimensional porous carbon films.
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Abstract: Carbon-supported nanoparticles are indispensable to enabling new energy technologies such as metal-air batteries and catalytic water splitting. However, achieving ultrasmall and high-density nanoparticles (optimal catalysts) faces fundamental challenges of their strong tendency toward coarsening and agglomeration. Herein, we report a general and efficient synthesis of high-density and ultrasmall nanoparticles uniformly dispersed on two-dimensional porous carbon. This is achieved through direct carbothermal shock pyrolysis of metal-ligand precursors in just ~100 ms, the fastest among reported syntheses. Our results show that the in situ metal-ligand coordination (e.g., N → Co2+) and local ordering during millisecond-scale pyrolysis play a crucial role in kinetically dominated fabrication and stabilization of high-density nanoparticles on two-dimensional porous carbon films. The as-obtained samples exhibit excellent activity and stability as bifunctional catalysts in oxygen redox reactions. Considering the huge flexibility in coordinated precursors design, diversified single and multielement nanoparticles (M = Fe, Co, Ni, Cu, Cr, Mn, Ag, etc) were generally fabricated, even in systems well beyond traditional crystalline coordination chemistry. Our method allows for the transient and general synthesis of well-dispersed nanoparticles with great simplicity and versatility for various application schemes.
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Sustainable zinc-air battery chemistry: advances, challenges and prospects.
TL;DR: This review systematically summarizes the fundamentals and advancements of sustainable zinc-air batteries, focusing on oxygen electrocatalysts, electrolytes, and Zn anodes, to provide insights into reaction mechanisms and design principles for large-scale applications.
157
Sabatier Relations in Electrocatalysts Based on High-entropy Alloys with Wide-distributed d-band Centers for Li-O2 Batteries.
Jiaming Tian,Yuan Rao,Wenhui Shi,Jiawei Yang,Wenjie Ning,Haoyu Li,Yonggang Yao,Haoshen Zhou,Shaohua Guo +8 more
- 12 Sep 2023
TL;DR: Sabatier relations in electrocatalysts based on high-entropy alloys with wide-distributed d-band centers for Li-O2 batteries are explored. Wide-distributed d-band centers enable a volcano-type correlation between d-band center and catalytic activity. The optimal d-band center strength leads to high energy conversion efficiency and durability.
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Electrolyte Tuned Robust Interface toward Fast‐Charging Zn–Air Battery with Atomic Mo Site Catalyst
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Constructing Asymmetrical Coordination Microenvironment with Phosphorus‐Incorporated Nitrogen‐Doped Carbon to Boost Bifunctional Oxygen Electrocatalytic Activity
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TL;DR: Constructing asymmetric coordination microenvironment with phosphorus-incorporated nitrogen-doped carbon boosts bifunctional oxygen electrocatalytic activity. The as-prepared NPC-950 electrocatalyst exhibits superior ORR and OER activity, comparable to commercial Pt/C and superior to other N-doped carbon catalyst materials.
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Regulating Electronic Structure of Bimetallic NiFe‐THQ Conductive Metal–Organic Frameworks to Boost Catalytic Activity for Oxygen Evolution Reaction
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TL;DR: A facile method to regulate electronic structure of bimetallic NiFe‐THQ conductive metal–organic frameworks for boosting catalytic activity of oxygen evolution reaction.
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