固体氧化物燃料电池技术的进步:缩小性能差距,增强环境可持续性

IF 6.2 Q2 ENERGY & FUELS Advanced Energy and Sustainability Research Pub Date : 2024-10-12 DOI:10.1002/aesr.202400132
Jingjing Li, Junhan Cheng, Yubing Zhang, Zhonghao Chen, Mahmoud Nasr, Mohamed Farghali, David W. Rooney, Pow-Seng Yap, Ahmed I. Osman
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引用次数: 0

摘要

鉴于到 2050 年全球能源需求预计将增加 50%,因此对创新、环保、高效和可靠的能源技术的需求至关重要。固体氧化物燃料电池(SOFC)为可持续能源生产提供了一种前景广阔的解决方案。本综述对 SOFC 进行了详细分析,涵盖其基本原理、材料、性能和各种应用,同时还探讨了技术挑战和未来前景。综述强调了 SOFC 的主要优势,包括高达 60% 的效率和最小的环境影响。它探讨了 SOFC 组件材料和制造工艺中抗杂质和耐久性的重要性。比较评估表明,与其他燃料电池技术相比,SOFC 具有更高的能效和生态效应。SOFC 在运输、发电和储能、便携式设备和住宅领域的应用展示了其多功能性和潜力。不过,也发现了一些挑战,如成本、寿命、可靠性以及与其他能源系统的整合,强调了支持性政策和法规的必要性。
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Advancements in Solid Oxide Fuel Cell Technology: Bridging Performance Gaps for Enhanced Environmental Sustainability

In light of the anticipated 50% increase in global energy demand by 2050, the demand for innovative, environmentally conscious, efficient, and dependable energy technologies is paramount. Solid oxide fuel cells (SOFCs) offer a promising solution for sustainable energy production. This comprehensive review provides a detailed analysis of SOFCs, covering their fundamentals, materials, performance, and diverse applications, while also addressing technological challenges and future prospects. The review emphasizes the key advantages of SOFCs, including their high efficiency of up to 60% and minimal environmental impact. It explores the significance of impurity resistance and durability in materials and manufacturing processes for SOFC components. Comparative evaluations demonstrate the superior energy efficiency and ecological effects of SOFCs compared to other fuel cell technologies. SOFCs’ versatility and potential are showcased through their applications in transportation, power generation and storage, portable devices, and residential usage. However, challenges such as cost, longevity, reliability, and integration with other energy systems are identified, emphasizing the need for supportive policies and regulations.

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来源期刊
CiteScore
8.20
自引率
3.40%
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0
期刊介绍: Advanced Energy and Sustainability Research is an open access academic journal that focuses on publishing high-quality peer-reviewed research articles in the areas of energy harvesting, conversion, storage, distribution, applications, ecology, climate change, water and environmental sciences, and related societal impacts. The journal provides readers with free access to influential scientific research that has undergone rigorous peer review, a common feature of all journals in the Advanced series. In addition to original research articles, the journal publishes opinion, editorial and review articles designed to meet the needs of a broad readership interested in energy and sustainability science and related fields. In addition, Advanced Energy and Sustainability Research is indexed in several abstracting and indexing services, including: CAS: Chemical Abstracts Service (ACS) Directory of Open Access Journals (DOAJ) Emerging Sources Citation Index (Clarivate Analytics) INSPEC (IET) Web of Science (Clarivate Analytics).
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Masthead Integration of Multifunctionality in a Colloidal Self-Repairing Catalyst for Alkaline Water Electrolysis to Achieve High Activity and Durability Advancements in Solid Oxide Fuel Cell Technology: Bridging Performance Gaps for Enhanced Environmental Sustainability Semiconductor Nanoporous Anodic Alumina Photonic Crystals as a Model Photoelectrocatalytic Platform for Solar Light-Driven Reactions Masthead
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