异构体硫改性 ZIF-8 衍生的锌、氮共掺碳纳米笼作为锌-空气电池的高效 ORR 催化剂

Guang Li, Xiangmei Tang, Kuang Sheng, Can Fang, Yiduo Zeng, Zhaomin Lu, Yaping Wang, Hu Zhou, Qingfeng Yi
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摘要

由沸石咪唑酸框架-8(ZIF-8)衍生的碳基电催化剂因其结构优势、高比表面积和可调活性位点而备受关注。在此,我们报告了通过自组装和两步热解合成杂原子硫(S)修饰 ZIF-8 衍生碳纳米笼(ZnS@N/S-C)用于氧电催化的情况。所制备的 ZnS@N/S-C 对氧还原反应(ORR)具有催化活性,半波电位(0.86 V)和稳定性(91.4%)分别较高,可与 Pt/C 相媲美或更胜一筹。此外,ZnS@N/S-C 作为锌空气电池(ZABs)的阴极,其开路电压为 1.407 V、功率密度为 114.4 mW cm-2、比容量为 764.6 mAh gZn-1 等性能指标均超过了 Pt/C。ZnS@N/S-C 的性能可归因于 S 的引入显著增加了催化剂的比表面积、孔体积和缺陷程度,同时优化了电子结构并生成了 ZnS 活性纳米晶体。这项研究采用了一种简单的硫化策略来提高 ZIF-8 衍生的具有完全填充 3d 轨道的 Zn 基催化剂的 ORR 活性,为此类材料的开发提供了指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heteroatom Sulfur-Modified ZIF-8 Derived Zn, N Co-Doped Carbon Nanocages as Highly Efficient ORR Catalysts for Zn-Air Batteries
Carbon-based electrocatalysts derived from zeolitic imidazolate framework-8 (ZIF-8) have garnered significant attention, owing to their structural advantages, high surface area, and tunable active sites. Herein, we report the synthesis of heteroatom sulfur (S) modified ZIF-8 derived carbon nanocages (ZnS@N/S-C) for oxygen electrocatalysis through self-assembly and two-step pyrolysis. The resultant ZnS@N/S-C exhibits catalytic activity towards oxygen reduction reaction (ORR) with high half-wave potential (0.86 V) and stability (91.4%), separately, which is comparable to or superior to Pt/C. Furthermore, the application of ZnS@N/S-C as a cathode for Zn-air batteries (ZABs) demonstrates performance metrics such as an open-circuit voltage of 1.407 V, a power density of 114.4 mW cm-2, and a specific capacity of 764.6 mAh gZn-1, etc. surpassing Pt/C. The performance of ZnS@N/S-C can be attributed to the fact that the introduction of S significantly increases the specific surface area, pore volume, and defect extent of the catalyst, while optimizing the electronic structure and generating ZnS active nanocrystals. This work employs a simple sulfurization strategy to enhance the ORR activity of ZIF-8-derived Zn-based catalysts with fully filled 3d orbitals, providing guidance for the development of such materials.
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