材料科学
碳纤维
储能
纳米技术
生物反应器
工艺工程
小泡
化学工程
复合材料
化学
有机化学
膜
生物
遗传学
功率(物理)
物理
量子力学
复合数
工程类
作者
Shenghui Shen,Yanbin Chen,Xinyi Gu,Ketong Chen,Zhong Qiu,Ping Liu,Yongqi Zhang,Jiayuan Xiang,Yefeng Yang,Feng Cao,Sheng Wang,Wangjun Wan,Xinping He,Xinqi Liang,Ningzhong Bao,Minghua Chen,Xinhui Xia,Xinhui Xia,Wenkui Zhang
标识
DOI:10.1002/adma.202400245
摘要
Abstract The construction of high‐quality carbon‐based energy materials through biotechnology has always been an eager goal of the scientific community. Herein, juice vesicles bioreactors (JVBs) bio‐technology based on hesperidium (e.g., pomelo, waxberry, oranges) is first reported for preparation of carbon‐based composites with controllable components, adjustable morphologies, and sizes. JVBs serve as miniature reaction vessels that enable sophisticated confined chemical reactions to take place, ultimately resulting in the formations of complex carbon composites. The newly developed approach is highly versatile and can be compatible with a wide range of materials including metals, alloys, and metal compounds. The growth and self‐assembly mechanisms of carbon composites via JVBs are explained. For illustration, NiCo alloy nanoparticles are successfully in situ implanted into pomelo vesicles crosslinked carbon (PCC) by JVBs, and their applications as sulfur/carbon cathodes for lithium–sulfur batteries are explored. The well‐designed PCC/NiCo‐S electrode exhibits superior high‐rate properties and enhanced long‐term stability. Synergistic reinforcement mechanisms on transportation of ions/electrons of interface reactions and catalytic conversion of lithium polysulfides arising from metal alloy and carbon architecture are proposed with the aid of DFT calculations. The research provides a novel biosynthetic route to rational design and fabrication of carbon composites for advanced energy storage.
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