Yanwei Feng, Yongfeng Yuan, Gaoshen Cai, Bingxu Wang, Jun Zhang, Yang Xia, Shaoyi Guo
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引用次数: 0
摘要
界面 pH 值波动是造成锌金属阳极相关问题的主要原因之一。在此,极性两性丙氨酸作为一种多功能电解质添加剂,旨在调节电双层(EDL)和溶解结构。具有 pH 自适应能力的丙氨酸可以稳定电解质的 pH 值。由于丙氨酸具有更高的负吸附能,它能优先吸附在 Zn 表面,并排斥 EDL 中的水分子。富含丙氨酸的 EDL 能有效屏蔽表面尖端,均匀界面电场分布,促进水平片状 Zn 的优先沉积。富含丙氨酸的 EDL 限制了水与锌阳极之间的接触。丙氨酸添加剂会减少 Zn2+ 溶剂鞘中的水分子数量,并破坏电解质中的氢键网络。因此,可以实现致密、纹理清晰的锌沉积。腐蚀和副反应受到抑制。对称电池在 3 mA cm-2/1 mAh cm-2 条件下的循环稳定性达到 2700 小时,在 5 mA cm-2/1 mAh cm-2 条件下达到 2050 小时。在 5 mA cm-2/1 mAh cm-2 条件下循环 4500 次,平均库仑效率达到 99.8%。即使在 KOH 碱性电解质中,丙氨酸添加剂仍可将对称电池的循环寿命提高到 100 小时(0.5 mA cm-2/0.5 mAh cm-2)。
Multifunctional Amphoteric Additive Alanine Enables High-Performance Wide-pH Zn Metal Anodes
Interfacial pH fluctuation is one of the primary reasons for issues related to Zn metal anodes. Herein, polar amphoteric alanine, as a multifunctional electrolyte additive, is designed to regulate the electric double layer (EDL) and solvation structure. Alanine with self-adaptation capability to pH can stabilize electrolyte pH. Due to more negative adsorption energy, alanine preferentially adsorbs on the Zn surface and repels water molecules within the EDL. Alanine-enriched EDL effectively shields the surface tips, homogenizes interfacial electric field distribution, and promotes preferential deposition of horizontal flaky Zn. Alanine-enriched EDL limits the contact between water and the Zn anode. Alanine additive decreases the quantity of water molecules in the Zn2+ solvation sheath and disrupts H-bond networks in the electrolyte. Consequently, a dense and textured Zn deposition is achieved. Corrosion and side reactions are suppressed. Cycling stability of symmetrical cells attains 2700 h at 3 mA cm−2/1 mAh cm−2 and 2050 h at 5 mA cm−2/1 mAh cm−2. Average coulombic efficiency reaches 99.8% over 4500 cycles at 5 mA cm−2/1 mAh cm−2. Even within KOH alkaline electrolytes, alanine additive still improves the cycling lifespan of symmetrical cells to 100 h at 0.5 mA cm−2/0.5 mAh cm−2.
期刊介绍:
ACS Chemical Neuroscience publishes high-quality research articles and reviews that showcase chemical, quantitative biological, biophysical and bioengineering approaches to the understanding of the nervous system and to the development of new treatments for neurological disorders. Research in the journal focuses on aspects of chemical neurobiology and bio-neurochemistry such as the following:
Neurotransmitters and receptors
Neuropharmaceuticals and therapeutics
Neural development—Plasticity, and degeneration
Chemical, physical, and computational methods in neuroscience
Neuronal diseases—basis, detection, and treatment
Mechanism of aging, learning, memory and behavior
Pain and sensory processing
Neurotoxins
Neuroscience-inspired bioengineering
Development of methods in chemical neurobiology
Neuroimaging agents and technologies
Animal models for central nervous system diseases
Behavioral research