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Holey graphene hydrogel with in-plane pores for high- performance capacitive desalination 被引量:3
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作者 Weiqing Kong Xidong Duan +3 位作者 yongjie ge Hongtao Liu Jiawen Hu Xiangfeng Duan 《Nano Research》 SCIE EI CAS CSCD 2016年第8期2458-2466,共9页
Capacitive deionization is an attractive approach to water desalination and treatment. To achieve efficient capacitative desalination, rationally designed electrodes with high specific capacitances, conductivities, an... Capacitive deionization is an attractive approach to water desalination and treatment. To achieve efficient capacitative desalination, rationally designed electrodes with high specific capacitances, conductivities, and stabilities are necessary. Here we report the construction of a three-dimensional (3D) holey graphene hydrogel (HGH). This material contains abundant in-plane pores, offering efficient ion transport pathways. Furthermore, it forms a highly interconnected network of graphene sheets, providing efficient electron transport pathways, and its 3D hierarchical porous structure can provide a large specific surface area for the adsorption and storage of ions. Consequently, HGH serves as a binder-free electrode material with excellent electrical conductivity. Cyclic voltammetry (CV) measurements indicate that the optimized HGH can achieve specific capacitances of 358.4 F.g 1 in 6 M KOH solution and 148 F.g-1 in 0.5 M NaCl solution. Because of these high capacitances, HGH has a desalination capadty as high as 26.8 mg.g-1 (applied potential: 1.2 V; initial NaCI concentration: -5,000 mg.L-l). 展开更多
关键词 capacitive deionization desalination electrochemical capacitor graphene hydrogel (GH) in-plane pore
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Regulating f orbital of Tb electronic reservoir to activate stepwise and dual-directional sulfur conversion reaction 被引量:1
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作者 Shuang Yu Shuo Yang +12 位作者 Dong Cai Huagui Nie Xuemei Zhou Tingting Li Ce Liang Haohao Wang Yangyang Dong Rui Xu Guoyong Fang Jinjie Qian yongjie ge Yue Hu Zhi Yang 《InfoMat》 SCIE CAS CSCD 2023年第1期125-138,共14页
The sluggish kinetics in multistep sulfur redox reaction with different energy requirements for each step,is considered as the crucial handicap of lithium–sulfur(Li–S)batteries.Designing an electron reservoir,which ... The sluggish kinetics in multistep sulfur redox reaction with different energy requirements for each step,is considered as the crucial handicap of lithium–sulfur(Li–S)batteries.Designing an electron reservoir,which can dynamically release electron to/accept electron from sulfur species during dis-charge/charge,is the ideal strategy for realizing stepwise and dual-directional polysulfide electrocatalysis.Herein,a single Tb^(3+/4+)oxide with moderate unfilled f orbital is synthetized as an electron reservoir to optimize polysulfide adsorption via Tb–S and N…Li bonds,reduce activation energy barrier,expe-dite electron/Li+transport,and selectively catalyze both long-chain and short-chain polysulfide conversions during charge and discharge.As a result,Tb electron reservoir enables stable operation of low-capacity decay(0.087%over 500 cycles at 1 C),high sulfur loading(5.2 mg cm^(2))and electrolyte-starved(7.5μL mg^(-1))Li–S batteries.This work could unlock the potential of f orbital engineering for high-energy battery systems. 展开更多
关键词 electronic reservoir lithium-sulfur battery sulfur redox reaction kinetics unfilled f orbital
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含有丰富铁物种的配体诱导中空MOF衍生碳纳米材料用于高效氧还原反应
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作者 毛璐娇 葛勇杰 +7 位作者 陈丹丹 杨远东 徐少杰 薛金航 肖逵逵 周学梅 钱金杰 杨植 《Science China Materials》 SCIE EI CAS CSCD 2023年第6期2257-2265,共9页
合理地设计和制备低成本、高效、稳定的非贵金属基碳纳米材料具有重要意义.本文中我们在不同温度条件下,通过有机配体交换将MOF-5转换为ZIF-8,其过程中可以捕捉到ZIF-8的中间态(ZIF-8-M)并得到最终态(ZIF-8-F).将掺杂Fe离子的MOF材料进... 合理地设计和制备低成本、高效、稳定的非贵金属基碳纳米材料具有重要意义.本文中我们在不同温度条件下,通过有机配体交换将MOF-5转换为ZIF-8,其过程中可以捕捉到ZIF-8的中间态(ZIF-8-M)并得到最终态(ZIF-8-F).将掺杂Fe离子的MOF材料进行热解后,得到的Fe-ZIF-8-F-900材料具有大的比表面积、高的石墨化程度、丰富的碳纳米管以及高活性的铁物种等优点.这些特性有助于后续氧还原反应(ORR)更好的电子转移和质量传输.与Pt/C相比,Fe-ZIF-8-F-900具有优异的ORR性能,如较正的起始电位(0.982 V),大的极限电流密度(5.41 mA cm^(-2))和较小的Tafel斜率(40.6 mV dec^(-1)),且在10小时后电流保持率仍高达94.4%.此外,实验和理论结果均证实了Fe-ZIF-8-F-900组装的锌空气电池在实际应用中表现优异.本研究将为高效、低成本的非贵金属基电催化剂的开发和制备提供合理的设计策略,并为其在能源相关领域的实际应用指明方向. 展开更多
关键词 电子转移 铁物种 中间态 碳纳米材料 极限电流密度 氧还原反应 Tafel斜率 有机配体
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Iodine ion modification enables Ag nanowire film with improved carrier transport properties and stability as high-performance transparent conductor 被引量:1
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作者 Jianfang Liu Dongmei Deng +6 位作者 yongjie ge Yaomengli Xu Moxia Li Bingwu Liu Xidong Duan Yongchun Fu Jiawen Hu 《Nano Research》 SCIE EI CSCD 2022年第6期5410-5417,共8页
Ag nanowire(NW)film is the promising next generation transparent conductor.However,the residual long-chain polyvinylpyrrolidone(PVP,introduced during the synthesis of Ag NWs)layer greatly deteriorates the carrier tran... Ag nanowire(NW)film is the promising next generation transparent conductor.However,the residual long-chain polyvinylpyrrolidone(PVP,introduced during the synthesis of Ag NWs)layer greatly deteriorates the carrier transport capability of the Ag NW film and as well its long-term stability.Here,we report a one-step I−ion modification strategy to completely replace the PVP layer with an ultrathin,dense layer of I^(−)ions,which not only greatly diminishes the resistance of the Ag NW film itself and that at interface of the Ag NW film and a functional layer(e.g.,a current collect electrode)but also effectively isolates the approaching of corrosive species.Consequently,this strategy can simultaneously improve the carrier transport properties of the Ag NW film and its long-term stability,making it an ideal electric component in diverse devices.For example,the transparent heater and pressure sensor made from the I^(−)-wrapped Ag NW film,relative to their counterparts made from the PVP-wrapped Ag NW film,deliver much improved heating performance and pressure sensing performance,respectively.These results suggest a facile post treatment approach for thin Ag NW film with improved carrier transport properties and long-term stability,thereby greatly facilitating its downstream applications. 展开更多
关键词 Ag nanowire transparent conductor I−ion modification transparent heater pressure sensor
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