基于蛋白的天然生物炭用于 Si@SnO2@C 高效锂离子电池

IF 7.1 3区 材料科学 Q1 GREEN & SUSTAINABLE SCIENCE & TECHNOLOGY
Chuxiao Sun, Jinghong Pan, Xinmin Fu, Dacheng Ma, Lingyi Cui, Wenkai Yao, Chunxiao Jiao, Yanpei Xu, Haixing Hao, Ming Li, An Du, Qi Wang
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引用次数: 0

摘要

生物炭作为一种可持续的碳源一直备受期待。然而,将其用作锂离子电池材料中的固体生物质却受到诸多限制。每年约有 2-12% 的鸡蛋在生产和运输过程中蛋壳破裂。这些破损的鸡蛋不能被人类充分食用,还会造成严重的经济损失和浪费。锂离子电池储能材料从未关注过这种生物质废物。本研究利用蛋清凝胶作为碳源,以提高具有显著单体容量的 Si 和 SnO2 的性能。通过水热法,在 Si NPs 附近沉积了巧妙的 SnO2 层。然后,将 Si@SnO2 均匀地分散在蛋清溶液中;将得到的混合物冷冻干燥并退火,形成 Si@SnO2@Biochar 三元复合材料。Si 具有极高的比容量。电极结构受到外层生物质碳导电性增强的影响。它与二氧化硫层一起限制了电极的体积效应,这是提高导电性和整体性能的关键因素。由 Si@SnO2@Biochar 组成的材料在不同的电流密度范围内都表现出显著的电化学稳定性。在 1 A g-1 下循环 1000 次和 0.1 A g-1 下循环 100 次后,Si@SnO2@鸡蛋白碳的容量分别为 874.3 mAh g-1 和 888.7 mAh g-1。这项研究向硅阳极材料的商业化迈出了关键的一步,提出了一种新型、环保的储能方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Natural biochar based on protein in broken egg whites for Si@SnO2@C high-efficiency lithium-ion battery

Natural biochar based on protein in broken egg whites for Si@SnO2@C high-efficiency lithium-ion battery

Biochar has been eagerly awaited as a sustainable carbon source. However, its use as a solid biomass in lithium-ion battery materials is subject to several restrictions. About 2–12% of eggs experience shell cracking yearly during production and transport. These broken eggs cannot be adequately consumed by humans and also cause significant economic losses and wastage. This biomass waste has never been focused on lithium-ion battery energy storage materials. This study utilised egg white gel as a carbon source to enhance the performance of Si and SnO2, which possess significant individual capacity. Hydrothermally, ingenious SnO2 layers were deposited in the vicinity of Si NPs. Then, Si@SnO2 was uniformly dispersed in a solution of egg whites; the resulting mixture was freeze-dried and annealed to form Si@SnO2@Biochar ternary composites. Si offers an exceptionally high specific capacity. The electrode structure is influenced by the outer biomass carbon's electrical conductivity enhancements. It, in conjunction with the SnO2 layer, limits the bulk effect of the electrode, a critical factor in improving conductivity and overall performance. The material composed of Si@SnO2@Biochar exhibits remarkable electrochemical stability across a range of current densities. Following 1000 cycles at 1 A g−1 and 100 cycles at 0.1 A g−1, the Si@SnO2@Egg white carbon capacities are 874.3 mAh g−1 and 888.7 mAh g−1, respectively. A critical step towards commercialising silicon anode materials, this work presents a novel, environmentally friendly method for energy storage.

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来源期刊
CiteScore
5.80
自引率
6.40%
发文量
174
审稿时长
32 days
期刊介绍: Materials Today Sustainability is a multi-disciplinary journal covering all aspects of sustainability through materials science. With a rapidly increasing population with growing demands, materials science has emerged as a critical discipline toward protecting of the environment and ensuring the long term survival of future generations.
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