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用于高效水系电池型储能装置的缺陷工程纳米结构镍/金属有机框架衍生碳材料

Defect-Engineered Nanostructured Ni/MOF-Derived Carbons for an Efficient Aqueous Battery-Type Energy Storage Device.

作者信息

Mofokeng Thapelo Prince, Ipadeola Adewale Kabir, Tetana Zikhona Nobuntu, Ozoemena Kenneth Ikechukwu

机构信息

Molecular Sciences Institute, School of Chemistry, University of the Witwatersrand, Private Bag 3, PO Wits, Johannesburg 2050, South Africa.

DSI-NRF Centre of Excellence in Strong Materials, School of Chemistry, University of the Witwatersrand, Private Bag 3, PO Wits, Johannesburg 2050, South Africa.

出版信息

ACS Omega. 2020 Aug 7;5(32):20461-20472. doi: 10.1021/acsomega.0c02563. eCollection 2020 Aug 18.

Abstract

A Ni-based metal-organic framework (Ni-MOF) has been synthesized using a microwave-assisted strategy and converted to nanostructured Ni/MOF-derived mesoporous carbon (Ni/MOFDC) by carbonization and acid treatment (AT-Ni/MOFDC). The materials are well characterized with Raman, X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), transmission electron microscopy (TEM), scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDX), and Brunauer-Emmett-Teller (BET), revealing that chemical etching confers on the AT-Ni/MOFDC-reduced average nanoparticle size (high surface area) and structural defects including oxygen vacancies. AT-Ni/MOFDC displays low series resistances and a higher specific capacity ( ) of 199 mAh g compared to Ni/MOFDC (92 mAh g). This study shows that the storage mechanism of the Ni-based electrode as a battery-type energy storage (BTES) system can be controlled by both non-faradic and faradic processes and dependent on the sweep rate or current density. AT-Ni/MOFDC reveals mixed contributions at different rates: 75.2% faradic and 24.8% non-faradic contributions at 5 mV s, and 34.1% faradic and 65.9% non-faradic at 50 mV s. The full BTES device was assembled with AT-Ni/MOFDC as the cathode and acetylene black (AB) as the anode. Compared to recent literature, the AT-Ni/MOFDC//AB BTES device exhibits high energy (33 Wh kg) and high power (983 W kg) with excellent cycling performance (about 88% capacity retention over 2000 cycles). This new finding opens a window of opportunity for the rational designing of next-generation energy storage devices, supercapatteries, that combine the characteristics of batteries (high energy) and supercapacitors (high power).

摘要

采用微波辅助策略合成了一种镍基金属有机框架(Ni-MOF),并通过碳化和酸处理将其转化为纳米结构的Ni/MOF衍生介孔碳(Ni/MOFDC)(AT-Ni/MOFDC)。通过拉曼光谱、X射线衍射(XRD)、X射线光电子能谱(XPS)、透射电子显微镜(TEM)、扫描电子显微镜(SEM)、能量色散X射线光谱(EDX)和布鲁诺尔-埃米特-泰勒(BET)对材料进行了充分表征,结果表明化学蚀刻使AT-Ni/MOFDC的平均纳米颗粒尺寸减小(高表面积)并产生包括氧空位在内的结构缺陷。与Ni/MOFDC(92 mAh g)相比,AT-Ni/MOFDC显示出低串联电阻和更高的比容量(199 mAh g)。这项研究表明,作为电池型储能(BTES)系统的镍基电极的存储机制可以由非法拉第和法拉第过程控制,并取决于扫描速率或电流密度。AT-Ni/MOFDC在不同速率下显示出混合贡献:在5 mV s时,法拉第贡献为75.2%,非法拉第贡献为24.8%;在50 mV s时,法拉第贡献为34.1%,非法拉第贡献为65.9%。全BTES器件以AT-Ni/MOFDC为阴极、乙炔黑(AB)为阳极组装而成。与最近的文献相比,AT-Ni/MOFDC//AB BTES器件具有高能量(33 Wh kg)和高功率(983 W kg),并具有出色的循环性能(在2000次循环中容量保持率约为88%)。这一新发现为合理设计结合电池(高能量)和超级电容器(高功率)特性的下一代储能器件——超级电容电池打开了一扇机会之窗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ac2/7439376/a771d204adb4/ao0c02563_0001.jpg

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