基于核磁共振技术探讨有机硅电解质物化特性
收稿日期: 2021-02-08
网络出版日期: 2021-04-08
基金资助
国家自然科学基金资助项目(21573239);国家自然科学基金资助项目(31901696);广东省科技计划应用型科技研发专项资助项目(2015B010135008);广州市科技计划项目(202002030225)
Physical and Chemical Properties of Silicone Electrolyte Materials Evaluated by Nuclear Magnetic Resonance Technology
Received date: 2021-02-08
Online published: 2021-04-08
有机硅化合物是电解质材料研究的热点之一,其物理化学特性是衡量电池性能的重要参数.本文采用多种核磁共振(NMR)技术(包括1H NMR、13C NMR、DOSY、7Li NMR、19F NMR)对有机硅化合物CN(CH2)2SiCH3(OCH2CH2OCH3)2(BNS)的结构,电解液(LiPF6/BNS)的溶剂化效应、扩散系数和热稳定性四个方面进行了分析评价,发现BNS和LiPF6之间具有溶剂化效应;BNS的氰基(CN)和醚键(-O-)基团可与Li+形成络合物,且氰基配位能力优于醚键,络合键的形成促进了LiPF6的离解和扩散,同时也提高了LiPF6/BNS的热稳定性,证明高温下LiPF6的分解是电解液失败的主要原因.该研究为开发新型电解质化合物及促进其性能提升提供了理论依据.
陈晓丽 , 雍天乔 , 陈程 , 付娟 , 莫家媚 , 苏秋成 . 基于核磁共振技术探讨有机硅电解质物化特性[J]. 波谱学杂志, 2021 , 38(3) : 291 -300 . DOI: 10.11938/cjmr20212888
Organosilicon compounds are one of the hot topics in research on electrolyte materials, with their physical and chemical properties standing as important parameters for measuring battery performance. In this paper, the structure of CN(CH2)2SiCH3(OCH2CH2OCH3)2(BNS), solvation effect, diffusion coefficient and thermal stability of LiPF6/BNS were analyzed and evaluated by various nuclear magnetic resonance (NMR) methods (i.e., 1H NMR, 13C NMR, DOSY, 7Li NMR and 19F NMR). It was observed that there was a solvation effect between BNS and LiPF6. Cyano (CN) and ether bond (-O-) groups in BNS may help to form complexes with Li+, and the coordination ability of CN is better than that of -O-. The formation of complex bond accelerated dissociation and diffusion of LiPF6, and also improved the thermal stability of electrolyte (LiPF6/BNS). It was proved that decomposition of LiPF6 at high temperature was the main cause of electrolyte failure. The results of this study provided a theoretical basis for the development of new electrolyte compounds and improvement of their performance.
Key words: silicone; electrolyte materials; 1H NMR; 13C NMR; DOSY
| 1 | LI X Z , SU F , XU Y L . Research progress of materials for power lithium-ion battery[J]. Chin Bat Ind, 2018, 22 (003): 138- 146. |
| 1 | 李相哲, 苏芳, 徐烨玲. 锂离子动力电池材料研究进展[J]. 电池工业, 2018, 22 (003): 138- 146. |
| 2 | KALHOFF J , BRESSER D , BOLLOLI M , et al. Enabling LiTFSI-based electrolytes for safer lithium-ion batteries by using linear fluorinated carbonates as (Co) solvent[J]. Chemsuschem, 2015, 7 (10): 2939- 2946. |
| 3 | IMAE I , KATAOKA H , HARIMA Y . Flexible thermoelectric materials based on conducting polymers doped with silicone polymer electrolyte[J]. Molecular Crystals and Liquid Crystals, 2019, 685 (1): 100- 106. |
| 4 | KIM S Y , KIM C H , YANG C M . Binder-free silicon anodes wrapped in multiple graphene shells for high-performance lithium-ion batteries[J]. Journal of Power Sources, 2021, 486, 229350. |
| 5 | WU W , QIN W , HE H , et al. Synthesis of cyano containing organosilicon based electrolytes[J]. Silicone Material, 2017, 31 (5): 339- 343. |
| 5 | 吴伟, 秦文, 何海, 等. 含氰基有机硅电解质的合成[J]. 有机硅材料, 2017, 31 (5): 339- 343. |
| 6 | KIM K M , LY N V , WON J H , et al. Improvement of lithium-ion battery performance at low temperatureby adopting polydimethylsiloxane- based electrolyte additives[J]. Electrochimica Acta, 2014, 136, 182- 188. |
| 7 | ZHAO X Y , WANG J L , YAN X D , et al. Effect of nitrile group functionalized organosilicon as electrolyte additive on low-temperature performance of LiFePO4battery[J]. Chemical Journal of Chinese Universities, 2019, 40 (6): 1258- 1264. |
| 7 | 赵欣悦, 汪精伦, 闫晓丹, 等. 腈基功能化有机硅电解液添加剂对LiFePO4电池低温性能的影响[J]. 高等学校化学学报, 2019, 40 (6): 1258- 1264. |
| 8 | LI Y J , LI Y J , WU F , et al. The progress in exploration of organosiloxane used in the electrolyte to improve the lithium batteries' safety performance[J]. Journal of Functional Materials, 2014, 45 (22): 22001- 22005. |
| 8 | 李月姣, 李雅静, 吴锋, 等. 有机硅在锂离子电池电解质中的应用[J]. 功能材料, 2014, 45 (22): 22001- 22005. |
| 9 | YANG K , SHUAI X R , YANG H C , et al. Electrochemical performance of activated graphene powder supercapacitors using a room temperature ionic liquid electrolyte[J]. Acta Physico-Chimica Sinica, 2019, 35 (7): 755- 765. |
| 9 | 杨康, 帅骁睿, 杨化超, 等. 基于室温离子液体的活化石墨烯粉末超级电容储能性能[J]. 物理化学学报, 2019, 35 (7): 755- 765. |
| 10 | ZHANG H H , ZHENG W , CHEN Y P . Principle and application of spectroscopy[M]. Beijing: Chemical Industry Press, 2016, 100- 104. |
| 10 | 张汉辉, 郑威, 陈义平. 波谱学原理及应用[M]. 北京: 化学工业出版社, 2016, 100- 104. |
| 11 | LEI Z Y , LIANG X M , LEI Y Y , et al. Progresses in solid-state NMR studies on carbon anode materials for lithium/sodium-ion batteries[J]. Chinese J Magn Reson, 2020, 37 (1): 28- 39. |
| 11 | 雷振宇, 梁欣苗, 雷友义, 等. 固体核磁共振技术在锂/钠离子电池碳负极中的应用及研究进展[J]. 波谱学杂志, 2020, 37 (1): 28- 39. |
| 12 | AMUL B , MUTHU S , RAJA M , et al. Molecular structure, spectroscopic (FT-IR, FT-Raman, NMR, UV-VIS), chemical reactivity and biological examinations of ketorolac[J]. J Mol Struc, 2020, 1210, 128040. |
| 13 | WEN L , LI C F . Structure and configuration analyses of a nucleating agent for isotactic polypropylene crystallization[J]. Chinese J Magn Reson, 2020, 37 (3): 291- 299. |
| 13 | 温亮, 李春发. 规聚丙烯成核剂的结构和构型分析[J]. 波谱学杂志, 2020, 37 (3): 291- 299. |
| 14 | XU S J , SUN Z H , SUN C G , et al. Homogeneous and fast ion conduction of PEO-based solid-state electrolyte at low temperature[J]. Advanced Functional Materials, 2020, 2007172. |
| 15 | LI H W , YUAN Z L , XIA B . Determination of apparent protein molecular weight in solution by diffusion ordered NMR spectroscopy[J]. Chinese J Magn Reson, 2018, 35 (3): 280- 286. |
| 15 | 李红卫, 袁志良, 夏斌. 扩散序谱(DOSY)实验测定缓冲体系中蛋白质表观分子量[J]. 波谱学杂志, 2018, 35 (3): 280- 286. |
| 16 | ZHANG P , CHEN Y , LUO W . Application progress of nuclear magnetic resonance diffusion ordered spectroscopy[J]. Journal of Instrumental Analysis, 2020, 39 (8): 1050- 1057. |
| 16 | 张鹏, 陈媛, 罗维. 核磁共振扩散序谱的研究及应用进展[J]. 分析测试学报, 2020, 39 (8): 1050- 1057. |
| 17 | YAN X D , ZHANG L Z , LU J D . Improve safety of high energy density LiNi1/3Co1/3Mn1/3O2/graphite battery using organosilicon electrolyte[J]. Electrochimica Acta, 2019, 296, 149- 154. |
| 18 | YONG T Q , WANG J L , MAI Y J , et al. Organosilicon compounds containing nitrile and oligo(ethylene oxide) substituents as safe electrolytes for high-voltage lithium-ion batteries[J]. Journal of Power Sources, 2014, 254, 29- 32. |
| 19 | 雍天乔. 新型锂离子电池电解液材料及其安全高电压性能的研究[D]. 广州: 中国科学院大学广州能源研究所, 2014, 31-32. |
| 20 | XUAN X P , ZHANG H C , WANG J J , et al. Spectroscopic study of ion-solvent and ion-ion interactions in lithium battery electrolyte solution Ⅶ. LiBF4/g-butyrolactone[J]. Journal of Henan Normal University (Natural Science), 2002, 30 (4): 126. |
| 20 | 轩小朋, 张虎成, 王键吉, 等. 锂电池电解质溶液中离子-溶剂和离子-离子相互作用的谱学研究Ⅶ. LiBF4/g-丁内酯[J]. 河南师范大学学报(自然科学版), 2002, 30 (4): 126. |
| 21 | WANG J L , YAN X D , YONG T Q , et al. Nitrile-modified 2, 5-di-tert-butyl-hydroquinones as redox shuttle overcharge additives for lithium-ion batteries[J]. Acta Physico-Chimica Sinica, 2016, 32 (9): 2293- 2300. |
| 21 | 汪精伦, 闫晓丹, 雍天乔, 等. 过充保护添加剂氰基功能化2, 5-二叔丁基对苯二酚的合成及其在锂离子电池中的应用[J]. 物理化学学报, 2016, 32 (9): 2293- 2300. |
| 22 | HUANG J L , YU Y H . Effects of digital resolution on diffusional dimension in DOSY experiments[J]. Chinese J Magn Reson, 2018, 35 (3): 287- 293. |
| 22 | 黄俊霖, 余亦华. 扩散序谱(DOSY)实验中扩散系数维数字分辨率的影响[J]. 波谱学杂志, 2018, 35 (3): 287- 293. |
| 23 | ARAVINDAN V , GNANARAJ J , MADHAVI S , et al. Lithium-ion conducting electrolyte salts for lithium batteries[J]. Chemistry, 2011, 17 (51): 14326- 14346. |
| 24 | ZHAO H , YUAN L , JI L K , et al. Study of lithium hexafluorophosphate by NMR spectroscopy[J]. Guangzhou Chemical Industry, 2014, 42 (14): 106- 108, 119. |
| 24 | 赵洪, 袁莉, 纪烈孔, 等. 六氟磷酸锂的核磁共振波谱研究[J]. 广州化工, 2014, 42 (14): 106- 108, 119. |
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