Prospects and challenges of energy storage materials: A comprehensive review

IF 5.5 Q1 ENGINEERING, CHEMICAL
Md Mir Shakib Ahmed , Md. Jahid Hasan , Md. Shakil Chowdhury , Md Khaledur Rahman , Md Saiful Islam , Md Shakhawat Hossain , Md. Aminul Islam , Nayem Hossain , Md Hosne Mobarak
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引用次数: 0

Abstract

Energy storage technologies, which are based on natural principles and developed via rigorous academic study, are essential for sustainable energy solutions. Mechanical systems such as flywheel, pumped hydro, and compressed air storage rely on inertia and gravitational potential to store and release energy. On the other hand, electrochemical systems, which include different types of batteries, effectively store and release energy by utilizing materials like metal hydrides and transition metal oxides. These materials are known for their high energy densities and reversible chemical properties. Although they have shown potential, issues such as high costs, limited availability of materials, and negative environmental effects continue to remain. This requires the development of sustainable and scalable production methods and presents difficulties in integrating with current infrastructure. To tackle these problems, a multidisciplinary strategy is necessary. This approach should involve the creation of effective materials, the implementation of sustainable manufacturing methods, and the establishment of comprehensive policy frameworks. Enhanced global collaboration and increased investment in research and development are crucial as well. Through promoting collaboration among scientists, engineers, policymakers, and industry stakeholders, we can address existing constraints, improve energy efficiency, and advance the ability of the energy sector to withstand challenges. This will enable the development of a strong, environmentally friendly energy future that can meet global energy needs in a sustainable and fair manner.
储能材料的前景与挑战:全面回顾
基于自然原理并通过严谨的学术研究开发的储能技术对于可持续能源解决方案至关重要。飞轮、抽水蓄能和压缩空气蓄能等机械系统依靠惯性和重力势能来储存和释放能量。另一方面,电化学系统(包括不同类型的电池)利用金属氢化物和过渡金属氧化物等材料有效地储存和释放能量。这些材料以其高能量密度和可逆化学特性而著称。虽然这些材料已显示出潜力,但仍存在成本高、材料供应有限以及对环境造成负面影响等问题。这就需要开发可持续和可扩展的生产方法,并在与现有基础设施整合时遇到困难。要解决这些问题,必须采取多学科战略。这种方法应包括创造有效的材料、实施可持续的生产方法以及建立全面的政策框架。加强全球合作和增加研发投资也至关重要。通过促进科学家、工程师、政策制定者和行业利益相关者之间的合作,我们可以解决现有的制约因素,提高能源效率,增强能源行业抵御挑战的能力。这将有助于发展一个强大、环保的能源未来,以可持续和公平的方式满足全球能源需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical Engineering Journal Advances
Chemical Engineering Journal Advances Engineering-Industrial and Manufacturing Engineering
CiteScore
8.30
自引率
0.00%
发文量
213
审稿时长
26 days
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