End-to-End Lifecycle Considerations for Minerals Powering Critical Technologies

A. Cleri, R. Spangler, Emilee Fortier
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Abstract

The United States (U.S.) is poised for a new wave of industrialization as it prepares to scale up domestic semiconductor manufacturing and widely implement clean energy infrastructure. With widespread application spaces beyond clean energy, such as communication, computing, healthcare, national security, and transportation, the scope of these endeavors is expected to be massive and long-term. The success of these initiatives is highly dependent on the non-renewable minerals used in critical technologies necessitating the adaptation of current business and legislative models to accommodate future long-term extraction and implementation needs. Without these adaptations, advancements will likely be made at the expense of taxpayers, vulnerable communities, and ecological preservation efforts. Here we propose policy recommendations to the U.S. federal government to minimize environmental and socio-economic harm resulting from metal mining and promote integration of circular economy principles in electronic product design. These recommendations are expected to have both domestic and international impacts in reducing harmful waste and increasing product longevity. Furthermore, these recommendations align with ensuring long-term U.S. leadership in the semiconductor and clean energy industries.
矿物驱动关键技术的端到端生命周期考虑
美国准备扩大国内半导体制造规模,并广泛实施清洁能源基础设施,即将迎来新一轮工业化浪潮。除了清洁能源之外,在通信、计算、医疗保健、国家安全和交通运输等领域也有广泛的应用空间,预计这些努力的范围将是巨大和长期的。这些倡议的成功在很大程度上取决于关键技术中使用的不可再生矿物,因此必须调整目前的商业和立法模式,以适应未来长期的开采和执行需要。如果没有这些适应措施,进步很可能会以纳税人、脆弱社区和生态保护努力为代价。在此,我们向美国联邦政府提出政策建议,以尽量减少金属开采对环境和社会经济的危害,并促进循环经济原则在电子产品设计中的整合。这些建议预计将对减少有害废物和延长产品寿命产生国内和国际影响。此外,这些建议与确保美国在半导体和清洁能源行业的长期领导地位相一致。
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