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Graphite-coated ZnO nanosheets as high-capacity, highly stable, and binder-free anodes for lithium-ion batteries

机译:石墨涂覆的ZnO纳米片作为锂离子电池的高容量,高稳定性和无粘结剂阳极

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ZnO is one of the materials of choice as anode for lithium batteries, due to its high theoretical capacity, natural abundance, low toxicity, and low cost. At present, however, its industrial exploitation is impeded by massive capacity fading, and by cycling instability due to the drastic volume expansions during the electrochemical lithiation/delithiation process. Herein, we present a novel graphite coated-ZnO anode for LiBs based on films of nanosheets, coated with graphite. The electrode is obtained by a simple and inexpensive solution hydrothermal synthesis, whereas the graphite is deposited by thermal evaporation, which is easier to perform than a wet chemistry technique. Our approach leads to a substantial increase of the permanent specific capacity, obtaining values of 600 mAhg(-1) after 100 cycles at a high specific current of 1 Ag-1. This represents the best performance for long-cycled, ZnO-based anodes obtained so far. Such result derives from the peculiar porous structure of the nanosheets film (pore diameter < 1 nm), as well as by the graphite coating that works as a dimensional buffer and preserves its morphology during cycling. This appears a very promising strategy for designing more stable ZnO-based anodes for Li batteries and microbatteries. (C) 2016 Elsevier B.V. All rights reserved.
机译:ZnO具有较高的理论容量,自然丰度,低毒性和低成本,是锂电池负极材料的选择之一。然而,目前,由于大规模的容量衰减以及由于在电化学锂化/脱锂过程中急剧的体积膨胀而导致的循环不稳定性,阻碍了其工业开发。在本文中,我们提出了一种新型的LiBs石墨涂覆的ZnO阳极,该阳极基于涂覆有石墨的纳米片薄膜。通过简单且廉价的溶液水热合成获得电极,而通过热蒸发沉积石墨,这比湿化学技术更容易执行。我们的方法导致永久比容量的大幅增加,在1 Ag-1的高比电流下100次循环后获得600 mAhg(-1)的值。这代表了迄今为止获得的长周期,基于ZnO的阳极的最佳性能。这样的结果来自于纳米片薄膜的特殊多孔结构(孔径<1 nm),以及作为尺寸缓冲剂并在循环过程中保持其形态的石墨涂层。这似乎是为锂电池和微型电池设计更稳定的基于ZnO的阳极的非常有前途的策略。 (C)2016 Elsevier B.V.保留所有权利。

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