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间歇通电和电极反转对MEC-CSTR反应器污泥餐厨垃圾协同厌氧消化的影响
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作者 支忠祥 韩宇乐 +2 位作者 陆雪琴 孙雨薇 甄广印 《能源环境保护》 2023年第5期121-128,共8页
城镇化快速发展导致大量污水污泥(Sewage Sludge,SS)和餐厨垃圾(Food Waste,FW)等有机固废的排放和产生。将微生物电解池(Microbial Electrolysis Cell,MEC)引入到厌氧消化(Anerobic Digestion,AD)过程可实现其高效的甲烷转化。本研究... 城镇化快速发展导致大量污水污泥(Sewage Sludge,SS)和餐厨垃圾(Food Waste,FW)等有机固废的排放和产生。将微生物电解池(Microbial Electrolysis Cell,MEC)引入到厌氧消化(Anerobic Digestion,AD)过程可实现其高效的甲烷转化。本研究探究了间歇通电和电极反转对MEC-连续搅拌式反应器(Continuous Stirred Tank Reactor,CSTR)的影响。结果表明,在1.2 V的外加电压和15 d的污泥停留时间(Sludge Retention Time,SRT)的条件下,MEC-CSTR运行良好,甲烷产率达到(741.9±99.2)mL/L-reactor/d。短暂断电(2 d)未对系统各项性能造成不良影响,而过长断电(7 d)则会降低反应器的有机物水解效果和甲烷产量;同时,连续电极反转会引起甲烷产量((541.7±32.0)mL/L-reactor/d)的下降;然而,无论间歇通电亦或电极反转均未对消化液的理化性质和系统稳定性造成不良影响。本研究可为MEC系统提升SS和FW协同厌氧能源化工程的优化实施提供新的解决思路。 展开更多
关键词 污水污泥 餐厨垃圾 微生物电解池 间歇通电 电极反换
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Dicarboxylate CaC8H4O4 as a high-performance anode for Li-ion batteries 被引量:3
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作者 Liping Wang Haiquan Zhang +5 位作者 Chengxu Mou Qianling Cui Qijiu Deng Jing Xue Xinyi Dai Jingze Li 《Nano Research》 SCIE EI CAS CSCD 2015年第2期523-532,共10页
Currently, many organic materials are being considered as electrode materials and display good electrochemical behavior. However, the most critical issues related to the wide use of organic electrodes are their low th... Currently, many organic materials are being considered as electrode materials and display good electrochemical behavior. However, the most critical issues related to the wide use of organic electrodes are their low thermal stability and poor cycling performance due to their high solubility in electrolytes. Focusing on one of the most conventional carboxylate organic materials, namely lithium terephthalate Li2CsH4O4, we tackle these typical disadvantages via modifying its molecular structure by cation substitution. CaCsH4O4 and A12(C8H4O4)3 are prepared via a facile cation exchange reaction. Of these, CaCsH4O4 presents the best cycling performance with thermal stability up to 570℃ and capacity of 399 mA.h.g-1, without any capacity decay in the voltage window of 0.005-3.0 V. The molecular, crystal structure, and morphology of CaCsH4O4 are retained during cycling. This cation-substitution strategy brings new perspectives in the synthesis of new materials as well as broadening the applications of organic materials in Li/Na-ion batteries. 展开更多
关键词 calcium terephthalate CARBOXYLATE Li-ion batteries organic electrode
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