综合智慧能源 ›› 2022, Vol. 44 ›› Issue (8): 75-85.doi: 10.3969/j.issn.2097-0706.2022.08.008
陈晗钰1(), 周晓亮1,2,*(
), 刘立敏1, 钱欣源1, 王宙1, 何非凡1, 绳阳1
收稿日期:
2022-07-23
修回日期:
2022-08-05
出版日期:
2022-08-25
通讯作者:
* 周晓亮(1978),男,教授,博士,从事高温电解水制氢方面的研究, xlzhou_swpu@sina.com。作者简介:
陈晗钰(1998),女,在读硕士研究生,从事质子导体电解水制氢方面的研究, 1035695998@qq.com。
基金资助:
CHEN Hanyu1(), ZHOU Xiaoliang1,2,*(
), LIU Limin1, QIAN Xinyuan1, WANG Zhou1, HE Feifan1, SHENG Yang1
Received:
2022-07-23
Revised:
2022-08-05
Published:
2022-08-25
摘要:
鉴于天然气、煤炭、石油等传统燃料燃烧面临的能源危机和环境挑战,发展新型可持续能源是我国实现“双碳”目标的必经之路。氢能因能量密度高、高效、清洁而备受瞩目。电解水制氢具有工艺简单、氢气纯度高等优点。在H2制备技术中,利用可再生能源供能的固体氧化物电解槽(SOEC)因具有高效和环保的特点而备受关注。传统氧离子导体固体氧化物电解池(O-SOEC)的发展受到工作温度过高等问题的限制,质子传导型固体氧化物电解池(H-SOEC)具有明显优势。总结H-SOEC电解质、氢电极与空气电极的材料,分析了不同水电解制氢技术的效率及影响电解效率的因素。在已有研究的基础上,指出了H-SOEC发展中存在的问题,并展望了今后的研发方向。
中图分类号:
陈晗钰, 周晓亮, 刘立敏, 钱欣源, 王宙, 何非凡, 绳阳. 质子导体固体电解池电解水制氢研究进展[J]. 综合智慧能源, 2022, 44(8): 75-85.
CHEN Hanyu, ZHOU Xiaoliang, LIU Limin, QIAN Xinyuan, WANG Zhou, HE Feifan, SHENG Yang. Research progress of hydrogen production from water electrolysis in proton-conducting solid electrolytic cells[J]. Integrated Intelligent Energy, 2022, 44(8): 75-85.
表1
不同电解技术的主要特征[37]
项目 | 碱性电解 | 质子交换电解 | 氧离子传导电解 | |||
---|---|---|---|---|---|---|
液体 | 聚合物电解质膜 | 固体氧化物电解(SOE) | ||||
电荷载体 | OH- | OH- | H+ | H+ | O2- | O2- |
工作温度/℃ | 20~80 | 20~200 | 20~200 | 500~1 000 | 500~1 000 | 750~900 |
电解质 | 液体 | 固体 | 固体 | 固体 | 固体 | 固体 |
OER | 4OH-→2H2O+ O2+4e- | 4OH-→2H2O+O2+4e- | 2H2O→4H++O2+4e- | 2H2O→4H++O2+4e- | O2-→ | O2-→ |
阳极材料 | Ni>Co>Fe (氧化物) | 镍基 | IrO2,RuO2,IrxRu1-xO2, | 具有质子电子导电性的钙钛矿 | LaxSr1-xMnO3+Y-ZrO2(LSM-YSZ) | LaxSr1-xMnO3+Y-ZrO2(LSM-YSZ) |
HER | 2H2O+4e-→4OH_+2H2 | 2H2O+4e-→ 4OH-+2H2 | 4H++4e-→2H2 | 4H++4e-→2H2 | H2O+2e-→H2+O2- | H2O+2e-→H2+O2- |
阴极材料 | 镍合金 | Ni,Ni-Fe,NiFe2O4 | Pt/C MoS2 | 镍金属陶瓷 | Ni-YSZ | Ni-YSZ钙钛矿 |
效率/% | 59~70 | — | 65~82 | 100 | 100 | — |
适用性 | 商业化 | 实验室规模 | 近商业化 | 实验室规模 | 实验室规模 | 实验室规模 |
优势 | 成本低,相对稳定,技术成熟 | 碱性和H+-PEM电解的组合 | 紧凑设计、启动快速、高纯度H2 | 增强反应动力学、热力学;更低的能源需求,更低的资本成本 | 合成气直接生产 | |
劣势 | 腐蚀电解液、气体渗透、慢动力学 | 聚合物膜中的OH-电导率低 | 高成本聚合物膜 | 安全问题,电极机械性能不稳定(开裂);密封问题 | ||
挑战 | 提高可靠性和氧分解 | 改善电解液 | 减少贵金属利用 | 电极的微观结构变化;分层、TPB堵塞、 钝化 | 碳沉积、电极的微结构变化 |
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