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A Dual Force Cross-Linked Γ-Pga-paa Binder Enhancing the Cycle Stability of Silicon-Based Anodes for Lithium-Ion Batteries

Electrochimica Acta(2022)SCI 2区

State Key Lab of Physical Chemistry of Solid Surface | Xiarnen Univ | Contemporary Amperex Technol Co

Cited 23|Views22
Abstract
Silicon (Si) is considered to be one of the most suitable anode materials for high energy density lithium-ion batteries due to its high theoretical specific capacity. However, the practical application of Si anode is limited by its huge volume change, leading to the rupture of electrode during cycling. In this study, a natural polymer of poly-glutamic acid (γ-PGA) is derived from nattomycin gum and poly-acrylic acid (PAA) through thermal cross-linking method and served as a dual force cross-linked binder. The two polymers are firmly bonded by dehydration to form the cross-linked γ-PGA-PAA binder with stable ester bonds, which readily creates hydrogen bonding forces with the hydroxyl groups on Si surface. The γ-PGA-PAA exhibits robust mechanical properties to achieve excellent electrochemical performance of Si-based electrode. When the γ-PGA-PAA is used as binder of Si nanoparticle anodes, the capacity retention of Si/γ-PGA-PAA electrode can reach 63.1% after 300 cycles at charge/discharge current density of 420 mA g−1 with a mass loading of about 0.7 mg cm−2. As a comparison, the capacity retentions of the Si/PAA and Si/γ-PGA electrodes are respectively 8.7 and 17.9% under the same conditions. At higher current density of 2940 mA g−1, the capacity retention of Si/PAA electrode has dropped dramatically to 23.3%, and the Si/γ-PGA-PAA electrode keeps still high-capacity retention of 72.5% after 400 cycles, while the Si/γ-PGA electrode can only last 40 cycles. When the three binders are applied to SiO electrode with 1 mg cm−2 loading, the γ-PGA-PAA binder yields also the highest capacity retention of 87.3% after 100 cycles at 160 mA g−1, while those corresponding to PAA and γ-PGA binders are 81.3% and 74.9%, respectively. XPS characterization results indicate that the γ-PGA-PAA binder has a strong adhesion to Si particles. This cross-linked binder network of γ-PGA-PAA effectively enhances the cycling performance and maintains the structural integrity of Si and SiO electrodes.
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Cross-linked binder,Dual-action binder network,Lithium-ion batteries,Nanoparticle Si anodes,SiO anodes
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要点】:本研究提出了一种双力交联的γ-PGA-PAA粘结剂,有效提高了硅基负极材料的循环稳定性,显著优于传统的PAA和γ-PGA粘结剂。

方法】:通过热交联方法,将来源于纳豆菌胶的天然聚合物γ-PGA与聚丙烯酸(PAA)交联,形成稳定的酯键和氢键,增强粘结剂的机械性能。

实验】:使用γ-PGA-PAA作为硅纳米粒子负极的粘结剂,在420 mA g^-1的充放电电流密度下,300次循环后容量保持率达到63.1%,而在2940 mA g^-1的高电流密度下,400次循环后容量保持率仍达72.5%。对比之下,相同条件下Si/PAA和Si/γ-PGA电极的容量保持率分别为8.7%和17.9%。对于SiO电极,使用γ-PGA-PAA粘结剂在160 mA g^-1下100次循环后容量保持率为87.3%,而PAA和γ-PGA粘结剂的容量保持率分别为81.3%和74.9%。XPS表征结果显示γ-PGA-PAA粘结剂与硅颗粒有很强的粘附力。