电催化剂
纤维素
生物炭
催化作用
电合成
生物量(生态学)
化学工程
热解
材料科学
纳米复合材料
化学
纳米技术
电化学
有机化学
电极
物理化学
海洋学
工程类
地质学
作者
Detao Liu,Yao Luo,Zhiyun Qian,Xiaoming Li,Yonghao Chen,Zhihao Zhong,Wenhao Ji,Yan Wang,Zhe Tian
标识
DOI:10.1002/adsu.202400280
摘要
Abstract Manufacturing the biochar‐derived 2e‐electron oxygen reduction (2e‐ORR) electrocatalyst from sustainable biomass promises a cost‐effective alternative for typical petroleum‐based resources, but still suffers from inferior catalytic activity and low 2e‐ORR selectivity. Here, the study demonstrates a simple and effective strategy for achieving high‐performance sustainable Co‐ZIF‐engineered cellulose electrocatalyst, enabling in situ growth of nanostructured ZIF‐67 particles around the abundant hydrophilic oxygen‐containing micro‐scale cellulose fibers. Through a simple one‐step pyrolysis at 900 °C of the cellulose‐Co‐ZIF substrate, a high‐porosity carbonous the Co‐ZIF‐CC catalyst is obtained that possesses active sites and carbon defects, facilitating 2e‐ORR progress for H 2 O 2 production. By utilizing O 2 as reaction gas, it can electrochemically generate H 2 O 2 concentration attaining up to 555.1 mg L −1 , outperforming a nearly five‐fold increase compared to that using air, and also showing about maximin thirty times higher compared to exiting biochar‐based 2e‐ORR electrocatalysts from biomass. The proposed cellulose‐Co‐ZIF strategy breakthroughs the next generation of sustainable 2e‐ORR electrocatalysts from renewable bioresources with low‐cost, economic ecology, beyond the wide potential applications for other electrocatalysts.
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