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通过酸刻蚀使质子陶瓷电池的界面恢复活力。

Revitalizing interface in protonic ceramic cells by acid etch.

机构信息

Energy and Environmental Science and Technology, Idaho National Laboratory, Idaho Falls, ID, USA.

Department of Chemical and Materials Engineering, New Mexico State University, Las Cruces, NM, USA.

出版信息

Nature. 2022 Apr;604(7906):479-485. doi: 10.1038/s41586-022-04457-y. Epub 2022 Apr 20.

Abstract

Protonic ceramic electrochemical cells hold promise for operation below 600 °C (refs. ). Although the high proton conductivity of the bulk electrolyte has been demonstrated, it cannot be fully used in electrochemical full cells because of unknown causes. Here we show that these problems arise from poor contacts between the low-temperature processed oxygen electrode-electrolyte interface. We demonstrate that a simple acid treatment can effectively rejuvenate the high-temperature annealed electrolyte surface, resulting in reactive bonding between the oxygen electrode and the electrolyte and improved electrochemical performance and stability. This enables exceptional protonic ceramic fuel-cell performance down to 350 °C, with peak power densities of 1.6 W cm at 600 °C, 650 mW cm at 450 °C and 300 mW cm at 350 °C, as well as stable electrolysis operations with current densities above 3.9 A cm at 1.4 V and 600 °C. Our work highlights the critical role of interfacial engineering in ceramic electrochemical devices and offers new understanding and practices for sustainable energy infrastructures.

摘要

质子陶瓷电化学电池有望在 600°C 以下运行(参考文献)。尽管已经证明了体电解质的高质子电导率,但由于未知原因,它不能在电化学全电池中充分利用。在这里,我们表明这些问题是由于低温处理的氧电极-电解质界面之间的不良接触引起的。我们证明,简单的酸处理可以有效地使高温退火后的电解质表面恢复活力,从而在氧电极和电解质之间形成反应性键合,提高电化学性能和稳定性。这使得质子陶瓷燃料电池在低至 350°C 的温度下具有出色的性能,在 600°C 时峰值功率密度为 1.6 W cm,在 450°C 时为 650 mW cm,在 350°C 时为 300 mW cm,在 1.4 V 和 600°C 时电流密度超过 3.9 A cm 时也能稳定电解操作。我们的工作强调了界面工程在陶瓷电化学器件中的关键作用,并为可持续能源基础设施提供了新的理解和实践。

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