从报废光伏组件中创造增值纳米硅阳极:回收、纳米结构以及球磨和粘合剂对其电化学性能的影响

Akhil Nelson, Srikanth Mateti, Ying Chen, Neeraj Sharma, Qi Han, Md Mokhlesur Rahman
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引用次数: 0

摘要

从报废的光伏(PV)组件中回收硅、纯化、转化为纳米硅(nano-Si)并随后将其用作锂离子电池的负极具有挑战性,但可对循环经济产生重大影响。目前,还没有一套完整的技术,包括从报废光伏组件中无交叉污染地回收硅片、对回收的光伏硅进行低成本、环保的净化处理、将回收的光伏硅高产转化为纳米硅,并随后应用于锂离子电池。本研究提供了一套完整的方案,包括无交叉污染的回收、经济的提纯、可靠的纳米硅转换以及报废光伏纳米硅在锂离子电池中的高效应用。演示的无氢氟酸回收和提纯工艺可提供大量高纯度(≥ 99)硅。此外,随后的球磨工艺还能生产出形状和尺寸各异的纳米硅。这项研究还通过水溶性羧甲基纤维素和聚(丙烯酸)前体的原位交联,制造出非常有效的纳米硅阳极。将不同的光伏纳米硅和水溶性羧甲基纤维素-聚(丙烯酸)交联粘合剂整合在一起,为开发硅基实用负极提供了独特的可能性,这种负极可用于下一代低成本锂离子电池,为手机和电动汽车提供动力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Creating value added nano silicon anodes from end-of-life photovoltaic modules: recovery, nano structuring, and the impact of ball milling and binder on its electrochemical performance
Recovery of silicon from end-of-life photovoltaic (PV) modules, purification, conversion to nano silicon (nano-Si), and subsequent application as an anode in lithium-ion batteries is challenging but can significantly influence the circular economy. Currently, a complete technology consisting of cross-contamination-free recovery of silicon wafers from end-of-life PV modules, a low-cost environmentally friendly purification process of the recovered PV silicon, a high yield conversion process of the recovered PV silicon into nano-Si, and its subsequent application in lithium-ion batteries is unavailable. This study provides a complete package including cross-contamination-free recovery, economical purification, reliable conversion to nano-Si, and efficient application of the end-of-life PV nano-Si in lithium-ion batteries. Hydrofluoric acid-free recovery and purification processes are demonstrated which can deliver large quantities of high-purity (≥ 99) silicon. In addition, the subsequent ball milling process produces very distinct nano-Si with different shapes and sizes. This study also creates a very effective nano-Si anode through in-situ crosslinking of water-soluble carboxymethyl cellulose and poly (acrylic acid) precursors. The integration of distinct PV nano-Si and water-soluble carboxymethyl cellulose-poly (acrylic acid) crosslink binder opens distinct possibilities to develop silicon-based practical anode for next generation low-cost lithium-ion batteries to power cell phones to electric vehicles.
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