Chi Peng , Ying Zhang , Shanchen Yang , Lu-Lu Zhang , Zhaohui Wang
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引用次数: 23
Abstract
Due to the low redox potential and high volumetric capacity, Zn metal anode is regarded as an ideal anode material for aqueous Zn-ion batteries (AZBs). However, the critical issues of uncontrolled dendrite propagation and side reactions with Zn anodes have hindered their practical applications. Herein, a thin and mesoporous polypyrrole (PPy) paper is proposed as an advanced zincophilic interlayer to tackle these problems. We show that the high surface area of the PPy interlayer promises enhanced reaction kinetics, and the excellent affinity to Zn2+ and uniform pore size distribution render homogeneous Zn2+ flux. Moreover, a compact PPy paper interlayer with high surface flatness can be readily made by mechanical compression, which enables much more intimate contact with the Zn anode at the nanoscale level, facilitating enhanced anti-corrosion property and dendrite-free deposition with nearly full surface coverage during repeated depositing/stripping. Consequently, the modulation of surface flatness engineered PPy paper interlayer enables dendrite-free Zn anode with an outstanding cycling performance at simultaneous high current densities and areal capacities (930 h at 5 mA cm−2 for 5 mAh cm−2). The feasibility of the PPy paper interlayer is verified in PANI/V2O5-based AZBs and activated carbon-based Zn-ion capacitors. Our work provides a facile and sustainable strategy and new insight into constructing efficient interface layers for practical AZBs by surface geometry engineering.
锌金属阳极由于具有低氧化还原电位和高容量的特点,被认为是一种理想的水性锌离子电池负极材料。然而,枝晶不受控制的扩展和与锌阳极的副反应等关键问题阻碍了它们的实际应用。本文提出了一种薄介孔聚吡咯(PPy)纸作为一种先进的亲锌中间层来解决这些问题。我们发现,PPy夹层的高表面积有望提高反应动力学,对Zn2+的良好亲和力和均匀的孔径分布使Zn2+通量均匀。此外,通过机械压缩可以很容易地制造出具有高表面平整度的致密PPy纸夹层,这使得在纳米级水平上与Zn阳极更紧密地接触,从而增强了抗腐蚀性能和在重复沉积/剥离过程中几乎完全覆盖表面的无枝晶沉积。因此,表面平整度的调制工程PPy纸中间层使无枝晶锌阳极在同时具有高电流密度和面容量的情况下具有出色的循环性能(5ma cm - 2, 5mah cm - 2, 930小时)。验证了PPy纸中间层在聚苯胺/ v2o5基azb和活性炭基zn离子电容器中的可行性。我们的工作为通过表面几何工程构建高效的azb界面层提供了一种简单和可持续的策略和新的见解。
期刊介绍:
Nano Energy is a multidisciplinary, rapid-publication forum of original peer-reviewed contributions on the science and engineering of nanomaterials and nanodevices used in all forms of energy harvesting, conversion, storage, utilization and policy. Through its mixture of articles, reviews, communications, research news, and information on key developments, Nano Energy provides a comprehensive coverage of this exciting and dynamic field which joins nanoscience and nanotechnology with energy science. The journal is relevant to all those who are interested in nanomaterials solutions to the energy problem.
Nano Energy publishes original experimental and theoretical research on all aspects of energy-related research which utilizes nanomaterials and nanotechnology. Manuscripts of four types are considered: review articles which inform readers of the latest research and advances in energy science; rapid communications which feature exciting research breakthroughs in the field; full-length articles which report comprehensive research developments; and news and opinions which comment on topical issues or express views on the developments in related fields.