Development of AlN-loaded PET separators from waste water bottle plastics with superior thermal characteristics for next-generation lithium-ion batteries†
Alpha Chi Him Tsang, Marco Yu Lam Wong, Chi-Wing Tsang, Dawson Wai-Shun Suen and Xiao-Ying Lu
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引用次数: 0
Abstract
Preventing short circuit hazard due to lithium (Li) dendrite formation across a separator from the anode of a lithium-ion battery (LIB) throughout operation is important; however, conventional separator materials cannot fulfil the increasing safety standards of next-generation LIBs. Thus, developing separator materials with high Li dendrite suppression ability in order to prevent short circuit is of paramount importance for realising next-generation LIBs. In this study, aluminum nitride-loaded polyethylene terephthalate (PET/AlN) composites with micro-/nanoarchitecture were synthesized using PET that was recycled from commercial waste bottles via an electrospinning strategy. Scanning electron microscopy (SEM) and transmission electron microscopy (TEM) suggested that AlN nanoparticles were encapsulated in PET micro-/nanoarchitecture fibres. Thermogravimetric analysis indicated that the AlN content in the composite materials was about 4–5 wt%. X-ray photoelectron spectroscopy (XPS) and Fourier-transform infrared (FTIR) spectroscopy confirmed the PET polymer structure of PET/AlN composites. The PET/AlN 4 wt% separator exhibited a porosity of 69.23%, according to the n-butanol uptake test, and a high electrolyte uptake of 521.69%. Most importantly, electrochemical results revealed that when evaluated at a current density of 0.5C, PET/AlN 4 wt% composites could deliver a reversible specific capacity of 238.2 mA h g−1 after 100 cycles. When C-rate capability tests were conducted at high charge–discharge densities of 0.2, 0.5, 1, 2, and 4C, the PET/AlN 4 wt% composite manifested average specific capacities of about 225.3, 218.4, 191.0, 127.5, and 28.1 mA h g−1, respectively. The excellent electrochemical performance of the PET/AlN 4 wt% composite could probably be attributed to the combined benefits of AlN nanoparticles and the micro-/nanoarchitecture. These unique features of PET/AlN were advantageous for effective Li ion transport in repeated charge–discharge cycles and strong hydrothermal stability, thereby resulting in safety, high capacity and excellent C-rate performance. Overall, this study demonstrated the excellent electrochemical performance of PET/AlN composites as stable separator materials for advanced LIBs.
在整个操作过程中,防止锂离子电池(LIB)阳极的隔膜上形成锂(Li)枝晶导致的短路危险非常重要;然而,传统的分离材料不能满足下一代lib日益提高的安全标准。因此,开发具有高锂枝晶抑制能力的隔膜材料以防止短路对于实现下一代锂离子电池至关重要。本研究以电纺丝法从商业废瓶中回收的PET为原料,合成了具有微/纳米结构的氮化铝负载聚乙烯对苯二甲酸乙二醇酯(PET/AlN)复合材料。扫描电镜(SEM)和透射电镜(TEM)分析表明,AlN纳米颗粒被包裹在PET微纳米结构纤维中。热重分析表明,复合材料中AlN的含量约为4 ~ 5%。x射线光电子能谱(XPS)和傅里叶变换红外光谱(FTIR)证实了PET/AlN复合材料的PET聚合物结构。根据正丁醇吸收率测试,PET/AlN 4 wt%分离器的孔隙率为69.23%,电解质吸收率高达521.69%。最重要的是,电化学结果显示,当电流密度为0.5C时,PET/AlN 4 wt%复合材料在100次循环后可以提供238.2 mA h g - 1的可逆比容量。在0.2、0.5、1、2和4C的高充放电密度下进行c倍率性能测试时,PET/ aln4wt %复合材料的平均比容量分别约为225.3、218.4、191.0、127.5和28.1 mA h g−1。PET/ aln4wt %复合材料的优异电化学性能可能归因于AlN纳米粒子和微/纳米结构的综合效益。PET/AlN的这些独特特性有利于在重复充放电循环中有效传输Li离子,并具有较强的水热稳定性,从而获得安全、高容量和优异的c倍率性能。总的来说,本研究证明了PET/AlN复合材料作为先进lib的稳定分离材料具有优异的电化学性能。
期刊介绍:
An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.