超量积累植物
石墨烯
材料科学
焦耳加热
生物量(生态学)
碳纤维
导电体
闪光灯(摄影)
焦耳(编程语言)
可再生能源
纳米技术
环境友好型
碳纳米管
能量转换
焦耳效应
工作(物理)
合金
氧化还原
废品
化学工程
储能
电加热
能源
能源消耗
升级
作者
Mingyue Xu,Bing Deng,Erkang Feng,Teng Wang,Zhenyu Ren,Y. S. Chan,Chun Huang,Wen‐Shen Liu,Ma La,Rongliang Qiu,Jianguo Liu
标识
DOI:10.1021/acs.est.6c00603
摘要
Rare-earth elements (REEs) are essential to clean-energy technologies, yet their extraction remains energy intensive and environmentally damaging. Although REE hyperaccumulator plants offer sustainable bioresource, their conversion into functional materials is inefficient and poorly developed. Here, we report a feedstock-customized phytogenic self-conducting flash Joule heating (PSC-FJH) strategy that directly converts REE hyperaccumulator plants into CeO 2 -graphene electrocatalysts within seconds, without external conductive additives or energy-intensive pretreatment. The low-temperature FJH (∼600 °C, 1.4 s) first forms conductive biochar, enabling subsequent high-temperature FJH (∼2600 °C, 0.4 s) that induces graphene formation and simultaneous in situ oxidation of endogenous Ce to uniformly dispersed CeO 2 particles. The resulting CeO 2 -graphene exhibits oxygen reduction reaction activity, surpassing that of commercial carbon black. Life-cycle assessment shows that PSC-FJH reduces energy consumption by over 70% compared with conventional graphitization processes. This work integrates ecological phytomining with ultrafast carbon conversion to upgrade REE hyperaccumulator plants into high-value catalytic materials.
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