Xuyang Lu, Siling Liu, Lei Zhang, Shaobo Ye, Chenchen Yue, Yufei Feng, Yu Zhou, Zhao Liang, Ying Wang, Weiyou Yang, Qing Shi
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引用次数: 0
摘要
枝晶生长、腐蚀和析氢是锌阳极存在的主要问题,严重阻碍了水溶液锌离子电池的进一步实际应用。为了解决这些问题,采用等离子体增强原子层沉积(PE-ALD)技术在锌阳极表面均匀沉积了厚度为110 nm的氮化锆(ZrN)层。原位/非原位表征验证了引入的ZrN层具有优异的防腐和亲锌能力,可以抑制腐蚀和析氢,降低Zn2+沉积的成核能势,有效抑制枝晶生长。理论计算还表明,ZrN对Zn2+的吸附能力明显高于裸Zn,这有利于调节Zn的沉积行为。这种创新的界面显著延长了电池的循环寿命,提高了库仑效率。令人鼓舞的是,在5 mA cm - 2的电流密度和1 mAh cm - 2的面容量下,Zn@ZrN对称电池显示出高达5000小时的非凡循环寿命,大大超过了其他由薄膜/涂层修饰的锌阳极。此外,在1ma cm - 2和1mah cm - 2下,它还具有令人印象深刻的1200小时的循环寿命。Zn@ZrN||MnO2电池在1000次循环后仍能保持高容量,明显优于传统的Zn||MnO2电池。
Nano-Scale ZrN Film Modified Zn Anode with Ultra-Long Cycle Life Over 5000 H
Dendrite growth, corrosion, and hydrogen evolution are major issues for Zn anodes, which seriously hinder the further practical application of aqueous zinc-ion batteries. To address these issues, Zirconium Nitride (ZrN) layer with a thickness of 110 nm is uniformly deposited on the surface of Zn anode using plasma-enhanced atomic layer deposition (PE-ALD). In/ex situ characterizations verify that the as-introduced ZrN layer has excellent anticorrosive and zincophilic ability, which can suppress corrosion and hydrogen evolution, lower the nucleation energy barrier for Zn2+ deposition, and effectively inhibit dendrite growth. Theoretical calculations also reveal that ZrN exhibits significantly higher adsorption capacity for Zn2+ compared to bare Zn, which is conducive to regulating the Zn deposition behavior. This innovative interface significantly extends battery cycle life and enhances coulombic efficiency. Encouragingly, under a current density of 5 mA cm−2 and areal capacity of 1 mAh cm−2, the Zn@ZrN symmetrical cells demonstrate an extraordinary cycling life of up to 5000 h, significantly surpassing other reported Zn anodes modified by films/coatings. In addition, it also exhibits an impressive cycling life of 1200 h at 1 mA cm−2 and 1 mAh cm−2. The full cells of Zn@ZrN||MnO2 retain high capacity after 1000 cycles, markedly outperforming conventional Zn||MnO2 batteries.
期刊介绍:
Small serves as an exceptional platform for both experimental and theoretical studies in fundamental and applied interdisciplinary research at the nano- and microscale. The journal offers a compelling mix of peer-reviewed Research Articles, Reviews, Perspectives, and Comments.
With a remarkable 2022 Journal Impact Factor of 13.3 (Journal Citation Reports from Clarivate Analytics, 2023), Small remains among the top multidisciplinary journals, covering a wide range of topics at the interface of materials science, chemistry, physics, engineering, medicine, and biology.
Small's readership includes biochemists, biologists, biomedical scientists, chemists, engineers, information technologists, materials scientists, physicists, and theoreticians alike.