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1-乙基-3-甲基咪唑双三氟甲磺酰亚胺盐

    级别和纯度:
  • ≥99%
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货号 (SKU) 包装规格 是否现货 价格 数量
E359386-1g
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E359386-5g
5g 现货 Stock Image
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咪唑鎓盐 (91)

基本描述

别名 1-乙基-3-甲基咪唑双(三氟甲磺酰)亚胺
英文别名 SCHEMBL372352 | MFCD03788927 | 1-ETHYL-3-METHYLIMIDAZOLIUM BIS(TRIFLUOROMETHYLSULFONYL)IMIDE, 99per cent [EMIIM] | A881650 | DTXCID4027943 | 1-ethyl-3-methyl-1H-imidazol-3-ium bis(trifluoromethylsulfonyl)amide | AB32790 | 1-Ethyl-3-methylimidazolium bis(t
规格或纯度 ≥99%
英文名称 1-Ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide
储存温度 室温,充氩
运输条件 常规运输
产品介绍

1-乙基-3-甲基咪唑双(三氟甲基磺酰基)酰亚胺[EMIM] [N(Tf)2]是一种室温离子液体(RTIL)。([EMIM] [N(TF)2])作为非水溶剂,由于其具有低蒸气压、高热稳定性、良好的导电性和宽的电化学窗口,因此在电活性物质的电化学研究中优于传统的非质子极性有机溶剂。[EMIM] [N(TF)2]在CO2中显示出良好的溶解性。

1-Ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide [EMIM][N(Tf)2] is a room temperature ionic liquid (RTIL). ([EMIM][N(Tf)2]) as a non-aqueous solvent, is advantageous over traditional aprotic polar organic solvents in electrochemical investigation of electroactive species since it has low vapor pressure, high thermal stability, good conductivity and a wide electrochemical window. [EMIM][N(Tf)2] shows good solubility in CO2.

纯度 ≥99%

名称和识别符

PubChem SID 504766680
分子类型 小分子
IIUPAC Name bis(trifluoromethylsulfonyl)azanide;1-ethyl-3-methylimidazol-3-ium
INCHI 1S/C6H11N2.C2F6NO4S2/c1-3-8-5-4-7(2)6-8;3-1(4,5)14(10,11)9-15(12,13)2(6,7)8/h4-6H,3H2,1-2H3;/q+1;-1
InChi Key LRESCJAINPKJTO-UHFFFAOYSA-N
Smiles CCN1C=C[N+](=C1)C.C(F)(F)(F)S(=O)(=O)[N-]S(=O)(=O)C(F)(F)F
Isomeric SMILES CCN1C=C[N+](=C1)C.C(F)(F)(F)S(=O)(=O)[N-]S(=O)(=O)C(F)(F)F
分子量 391.31
Reaxy-Rn 8661018
Reaxys-RN link address https://www.reaxys.com/reaxys/secured/hopinto.do?context=S&query=IDE.XRN=8661018&ln=

化学和物理性质

密度 1.526
敏感性 对空气敏感
折光率 1.42
闪点(℉) >392 °F
闪点(℃) >200 °C
熔点 ≥-15°C
分子量 391.300 g/mol
XLogP3
氢键供体数Hydrogen Bond Donor Count 0
氢键受体数Hydrogen Bond Acceptor Count 11
可旋转键计数Rotatable Bond Count 3
精确质量Exact Mass 391.01 Da
单同位素质量Monoisotopic Mass 391.01 Da
拓扑极表面积Topological Polar Surface Area 94.900 Ų
重原子数Heavy Atom Count 23
形式电荷Formal Charge 0
复杂度Complexity 447.000
同位素原子数Isotope Atom Count 0
定义的原子立体中心计数Defined Atom Stereocenter Count 0
未定义的原子立体中心计数Undefined Atom Stereocenter Count 0
定义的键立体中心计数Defined Bond Stereocenter Count 0
未定义的键立体中心计数Undefined Bond Stereocenter Count 0
所有立体化学键的总数The total count of all stereochemical bonds 0
共价键合单元计数Covalently-Bonded Unit Count 2

安全和危险性(GHS)

象形图 GHS05,   GHS06,   GHS09
信号词 危险
危险声明

H301: 吞咽会中毒

H311: 皮肤接触有毒

H314: 造成严重的皮肤灼伤和眼睛损伤

H411: 对水生生物有毒并具有长期持续影响

H301+H311: 吞咽或皮肤接触可致中毒。

预防措施声明

P260: 不要吸入灰尘/烟雾/气体/雾/蒸汽/喷雾。

P264: 处理后要彻底洗手。

P270: 使用本产品时,请勿进食、饮水或吸烟。

P273: 避免释放到环境中。

P280: 戴防护手套/穿防护服/戴防护眼罩/戴防护面具。

P321: 特殊处理(请参阅此标签上的...)。

P330: 漱口

P363: 再次使用之前,请清洗受污染的衣物。

P391: 收集溢出物

P301+P330+P331: 如误吞咽:漱口。不要诱导呕吐。

P302+P352: 如皮肤沾染:用水充分清洗。

P304+P340: 如误吸入:将人转移到空气新鲜处,保持呼吸舒适体位。

P361+P364: 立即脱掉所有沾染的衣服,清洗后方可重新使用。

P405: 密闭存放

P501: 将内容物/容器处理到。。。

P301+P316: 如果吞咽:立即寻求紧急医疗救助。

P305+P354+P338: 如果进入眼睛:立即用水冲洗几分钟。取下隐形眼镜(如果有的话),并且操作简单。继续冲洗。

P302+P361+P354: 如果接触皮肤:立即脱掉所有被污染的衣服。立即用水冲洗几分钟。

P316: 立即寻求紧急医疗救助。

WGK Germany 2
个人防护装备 Faceshields,full-face respirator (US),Gloves,Goggles,multi-purpose combination respirator cartridge (US),type ABEK (EN14387) respirator filter

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批号(Lot Number) 证书类型 货号
L2424252 分析证书 E359386
L2424251 分析证书 E359386
G2411062 分析证书 E359386
G2411065 分析证书 E359386

此产品的引用文献

引用文献

1. Hongsen Niu, Xiao Wei, Hao Li, Feifei Yin, Wenxiao Wang, Ryun-Sang Seong, Young Kee Shin, Zhao Yao, Yang Li, Eun-Seong Kim, Nam-Young Kim.  (2023)  Micropyramid Array Bimodal Electronic Skin for Intelligent Material and Surface Shape Perception Based on Capacitive Sensing.  Advanced Science,  (2305528).  [PMID:38029346] [10.1002/advs.202305528]
2. Zixi He, Zhengdong Liu, Bin Liu, Kaili Wang, Xuemei Dong, Zicheng Zhang, Chen Chen, Min Wang, Juqing Liu, Wei Huang.  (2024)  Thermally-induced phase fusion and color switching in ionogels for multilevel information encryption.  CHEMICAL ENGINEERING JOURNAL,  479  (147544).  [10.1016/j.cej.2023.147544]
3. Qi Liu, Lei Li, Gang Liu, Xi He, Yanhua Niu, Guangxian Li.  (2024)  Dual−crosslinked polyionic liquid polymer electrolyte with optimal balance of ion conductivity and mechanical properties for solid−state lithium metal battery.  JOURNAL OF POWER SOURCES,  592  (233897).  [10.1016/j.jpowsour.2023.233897]
4. Wenting Chen, Yikun Yi, Feng Hai, Zhendi Wu, Jingyu Guo, Xiaolu Tian, Xin Gao, Wei Tang, Mingtao Li.  (2023)  A Flexible and Self-Healing Ionic Gel Electrolyte Based on a Zwitterion (ZI) Copolymer for High-Performance Lithium Metal Batteries.  Batteries-Basel,  (9): (452).  [10.3390/batteries9090452]
5. Haihong Guo, Changjian Liu, Yujie Peng, Lin Gao, Junsheng Yu.  (2023)  Breathable and Stretchable Organic Electrochemical Transistors with Laminated Porous Structures for Glucose Sensing.  SENSORS,  23  (15): (6910).  [PMID:37571694] [10.3390/s23156910]
6. Wang Zhe, Wang Lin, Jiang Wanyuan, Jian Xigao, Hu Fangyuan.  (2023)  Development of flame-retardant ion-gel electrolytes for safe and flexible supercapacitors.  Science China-Materials,  66  (8): (3129-3138).  [10.1007/s40843-023-2470-3]
7. Fan Li, Hua Xue, Xiuzhu Lin, Chao Zhao, Juan Li, Hongran Zhao, Tong Zhang.  (2023)  Ionic Gel Based Multifunctional Sensor for Body Temperature Monitoring and Joint Motion Detection.  Advanced Materials Technologies,  (16): (2300297).  [10.1002/admt.202300297]
8. Zhichuan Bai, Xiang Gao, Zheng Liu, Dongliang Chao, Yingying Wang, Jie Yin, Cairong Jiang, Wenge Yang, Jianjun Ma, Yongjin Chen.  (2023)  Direct Observation of the Anisotropic Transport Behavior of Li+ in Graphite Anodes and Thermal Runaway Induced by the Interlayer Polarization.  ACS Applied Materials & Interfaces,  15  (19): (23623–23630).  [PMID:37133314] [10.1021/acsami.3c02214]
9. Haobing Chen, Dingyi Guo, Xiao Lei, Weiguang Wu, Xuanqi Guo, Yunfan Li, Xiaohong Weng, Sheng Liu, Feng Liu.  (2023)  One-Step Laser Direct-Printing Process of a Hybrid Microstructure for Highly Sensitive Flexible Piezocapacitive Sensors.  ACS Applied Materials & Interfaces,  15  (17): (21435–21443).  [PMID:37073628] [10.1021/acsami.3c01265]
10. Hao Wu, Mi Wang, Wanbao Wu, De Bai, Yihong Liang, Shunyou Hu, Wen Yu, Peng He, Jiaheng Zhang.  (2023)  Ionic liquid–polymer thermochromic electrolytes with a wide and tunable LCST for application in multi-stimuli-responsive optical modulation.  Journal of Materials Chemistry A,  11  (17): (9626-9634).  [10.1039/D2TA08226H]
11. Yunpeng Wang, Huimin Zhang, Shufen Zhang, Wenbin Niu.  (2023)  Squid-inspired photonic-ionic skin with anti-freezing, drying-tolerance, and antibacterial abilities for wirelessly interactive multi-sensing.  CHEMICAL ENGINEERING JOURNAL,  462  (142290).  [10.1016/j.cej.2023.142290]
12. Fuxin Yang, Bangju Wang, Yanhao Jiao, Houzhang Tan, Xiaopo Wang.  (2023)  Density and viscosity of three ionic liquids with 2,2,2-trifluoroethanol.  JOURNAL OF CHEMICAL THERMODYNAMICS,  181  (107038).  [10.1016/j.jct.2023.107038]
13. Dongyun Wang, Biyu Jin, Sifan Chen, Yongyuan Ren, Yang Hou, Xiang Gao, Qinggang He, Xiaoli Zhan, Qinghua Zhang.  (2023)  Ionic liquid modified carbon nanotubes doped gel polymer electrolyte for fast charging lithium metal batteries.  JOURNAL OF POWER SOURCES,  564  (232847).  [10.1016/j.jpowsour.2023.232847]
14. Lei Zhang, Haiqi Gao, Lixiang Guan, Yuchao Li, Qian Wang.  (2023)  Polyzwitterion–SiO2 Double-Network Polymer Electrolyte with High Strength and High Ionic Conductivity.  Polymers,  15  (2): (466).  [PMID:36679345] [10.3390/polym15020466]
15. Xingxing Zhao, Yudong Ding, Lijiao Ma, Xun Zhu, Hong Wang, Qiang Liao.  (2022)  An enhancement of CO2 capture in a type-III porous liquid by 2-Methylimidazole zinc salt (ZIF-8).  JOURNAL OF MOLECULAR LIQUIDS,  367  (120523).  [10.1016/j.molliq.2022.120523]
16. Caohua He, Jianqi Sun, Chengyi Hou, Qinghong Zhang, Yaogang Li, Kerui Li, Hongzhi Wang.  (2023)  Sandwich-structural ionogel electrolyte with core–shell ionic-conducting nanocomposites for stable Li metal battery.  CHEMICAL ENGINEERING JOURNAL,  451  (138993).  [10.1016/j.cej.2022.138993]
17. Sijing Liu, Yuewang Yang, Shusheng Chen, Jiongzhi Zheng, Dong Gyu Lee, Dan Li, Jinglei Yang, Baoling Huang.  (2022)  High p- and n-type thermopowers in stretchable self-healing ionogels.  Nano Energy,  100  (107542).  [10.1016/j.nanoen.2022.107542]
18. Jinlai Shen, Zhiwen Lei, Chaoyang Wang.  (2022)  An ion conducting ZIF-8 coating protected PEO based polymer electrolyte for high voltage lithium metal batteries.  CHEMICAL ENGINEERING JOURNAL,  447  (137503).  [10.1016/j.cej.2022.137503]
19. Xiujing Lin, Xinshuang Liu, Shiyuan Xu, Zeyu Liu, Cuie Zhao, Ruiqing Liu, Pan Li, Xiaomiao Feng, Yanwen Ma.  (2022)  Cation effect on ionic liquid-involved polymer electrolytes for solid-state lithium metal batteries.  NEW JOURNAL OF CHEMISTRY,  46  (21): (10379-10385).  [10.1039/D1NJ06210G]
20. Yang Hu, Boru Wei, Dongpeng Yang, Dekun Ma, Shaoming Huang.  (2022)  Chameleon-Inspired Brilliant and Sensitive Mechano-Chromic Photonic Skins for Self-Reporting the Strains of Earthworms.  ACS Applied Materials & Interfaces,  14  (9): (11672–11680).  [PMID:35226808] [10.1021/acsami.2c00561]
21. Zhennan Wang, Haobo Shi, Weizhong Zheng, Weizhen Sun, Ling Zhao, Weikang Yuan.  (2022)  One-step preparation of epoxy resin-based ionic gel electrolyte for quasi-solid-state lithium metal batteries.  JOURNAL OF POWER SOURCES,  524  (231070).  [10.1016/j.jpowsour.2022.231070]
22. Congsu Niu, Lianyuan Ji, Yao Chen, Shuai Ma, Yiwei Zhang, Xiaomin Liu, Hui Yang.  (2021)  Low-Melting-Point Ionic Liquid Electrolyte for an Intermediate-Temperature Sodium–Copper Chloride Battery.  ENERGY & FUELS,  35  (15): (12538–12545).  [10.1021/acs.energyfuels.1c00833]
23. Ahmed Eissa Abdelmaoula, Jun Shu, Yu Cheng, Lin Xu, Gang Zhang, Yangyang Xia, Muhammad Tahir, Peijie Wu, Liqiang Mai.  (2021)  Core–Shell MOF-in-MOF Nanopore Bifunctional Host of Electrolyte for High-Performance Solid-State Lithium Batteries.  Small Methods,  (8): (2100508).  [PMID:34927861] [10.1002/smtd.202100508]
24. Cheng Wang, Jiaoyang Chen, Jianhua Xu, Jiajun Fu.  (2021)  Transparent, Mechanically Strong, Amphiphilic Antibiofouling Coatings Integrating Antismudge and Intrinsic Self-Healing Capabilities.  ACS Applied Polymer Materials,  (7): (3416–3427).  [10.1021/acsapm.1c00377]
25. Tiejun Mao, Shuang Wang, Zhipeng Yong, Xiaodang Wang, Xu Wang, Hao Chen, Geng Liu, Di Wang, Zhe Wang.  (2021)  High-stable, outstanding heat resistance ionogel electrolyte and the poly(3,4-ethylenedioxythiophene) electrodes with excellent long-term stability for all-solid-state supercapacitor.  CHEMICAL ENGINEERING JOURNAL,  417  (129269).  [10.1016/j.cej.2021.129269]
26. Cheng Wang, RuiJing Li, Peng Chen, Yongsheng Fu, XinYan Ma, Tao Shen, Baojing Zhou, Ke Chen, JiaJun Fu, Xiaofang Bao, Wuwei Yan, Yong Yang.  (2021)  Highly stretchable, non-flammable and notch-insensitive intrinsic self-healing solid-state polymer electrolyte for stable and safe flexible lithium batteries.  Journal of Materials Chemistry A,  (8): (4758-4769).  [10.1039/D0TA10745J]
27. Xiaobai Li, Leipeng Zhang, Gaoping Xu, Bo Wang, Shuang Yu, Zichen Ren, Feifei Ren, Shuliang Dou, Yao Li, Jiupeng Zhao.  (2020)  Effect of ionic liquid electrolytes on the electrochemical stability and optical tunability of polyaniline-based infrared variable emittance devices.  ELECTROCHIMICA ACTA,  358  (136935).  [10.1016/j.electacta.2020.136935]
28. Rui Wu, Xianqiang Liu, Yijing Zheng, Yonghe Li, Huifeng Shi, Xiaopeng Cheng, Wilhelm Pfleging, Yuefei Zhang.  (2020)  Unveiling the intrinsic reaction between silicon-graphite composite anode and ionic liquid electrolyte in lithium-ion battery.  JOURNAL OF POWER SOURCES,  473  (228481).  [10.1016/j.jpowsour.2020.228481]
29. Teng Huang, Man-Cheng Long, Gang Wu, Yu-Zhong Wang, Xiu-Li Wang.  (2019)  Poly(ionic liquid)-Based Hybrid Hierarchical Free-Standing Electrolytes with Enhanced Ion Transport and Fire Retardancy Towards Long-Cycle-Life and Safe Lithium Batteries.  ChemElectroChem,  (14): (3674-3683).  [10.1002/celc.201900686]
30. Ning-Bo Li, Meng Wang, Ling-Xiang Guo, Bao-Ping Lin, Hong Yang.  (2018)  Ionic liquid embedded polyimides with ultra-foldability, ultra-flexibility, ultra-processability and superior optical transparency.  POLYMER,  153  (538).  [10.1016/j.polymer.2018.08.048]
31. Xin Huang, Zhong Huang, Jian-Cheng Lai, Lei Li, Guang-Cheng Yang, Cheng-Hui Li.  (2018)  Self-healing improves the stability and safety of polymer bonded explosives.  COMPOSITES SCIENCE AND TECHNOLOGY,  167  (346).  [10.1016/j.compscitech.2018.08.025]
32. Sun Xiaotian, Hui Ni, Luo Xiliang.  (2017)  Reagentless and label-free voltammetric immunosensor for carcinoembryonic antigen based on polyaniline nanowires grown on porous conducting polymer composite.  MICROCHIMICA ACTA,  184  (3): (889-896).  [10.1007/s00604-016-2068-0]
33. Weiqian Tian, Qiuming Gao, Weiwei Qian.  (2017)  Interlinked Porous Carbon Nanoflakes Derived from Hydrolyzate Residue during Cellulosic Bioethanol Production for Ultrahigh-Rate Supercapacitors in Nonaqueous Electrolytes.  ACS Sustainable Chemistry & Engineering,  (2): (1297–1305).  [10.1021/acssuschemeng.6b01390]
34. Wei Wan-Chu, Feng Shuo, Zheng Cai-Xia, Liang Guo-Dong, Gao Hai-Yang, Wu Qing, Zhu Fang-Ming.  (2015)  Glass transition and quantum yield for fluorescent labelled polystyrene core-forming block in self-assembled nanomicelles of amphiphilic diblock copolymers.  JOURNAL OF POLYMER RESEARCH,  22  (11): (1-8).  [10.1007/s10965-015-0855-7]
35. Chengsha Wei, Mingming Chen, Dong Liu, Weiming Zhou, Majid Khan, Xibo Wu, Ningdong Huang, Liangbin Li.  (2015)  Synthesis of recyclable, chemically cross-linked, high toughness, high conductivity ion gels by sequential triblock copolymer self-assembly and disulfide bond cross-linking.  RSC Advances,  (29): (22638-22646).  [10.1039/C4RA15095C]
36. Guangpeng Ma, Feng Pan, Xinpu Zhou, Zhipeng Yong, Xiaodong Wang, Chenglong Li, Wenyu Bai, Shuang Wang.  (2024)  A Flexible Supercapacitor Based on Deep Eutectic Solvent/[EMIM][TFSI] Ionogel with High Energy Density and Wide Temperature Range.  ACS Applied Electronic Materials,  (2): (1434-1443).  [10.1021/acsaelm.3c01738]
37. Wang Peng, Wang Guoqing, Sun Guifen, Bao Chenchen, Li Yang, Meng Chuizhou, Yao Zhao.  (2025)  A Flexible-Integrated Multimodal Hydrogel-Based Sensing Patch.  Nano-Micro Letters,  17  (1): (1-19).  [PMID:39982550] [10.1007/s40820-025-01656-w]
38. Jinxu Zhao, Qijun Chen, Ying Zhou, Jianming Zheng, Chunye Xu.  (2025)  A Tetramethyl Viologen for Aqueous Electrochromic Devices.  ACS Applied Materials & Interfaces,  17  (14): (21580-21588).  [PMID:40153383] [10.1021/acsami.5c04426]
39. Jinhui Luo, Kangcheng Zhao, Shuaibing Wang, Yanfang Chen, Lingbin Che, Xuanzhou Chen, Dong Zhang, Jintao Yang, Huabin Yin.  (2024)  A Universal Zwitterionic Cross-Linking Strategy for Designing Conductive Soft Electronics with Enhanced Mechanical Properties.  ACS Applied Materials & Interfaces,  16  (40): (54706-54715).  [PMID:39318341] [10.1021/acsami.4c13688]
40. Xu Liu, Jianxun Li, Yuehua Liu, Limin Zhou.  (2024)  Achieving enhanced multifunctional performance for structural composite supercapacitors by reinforcing interfaces with polymer coating.  JOURNAL OF COLLOID AND INTERFACE SCIENCE,  [PMID:38552577] [10.1016/j.jcis.2024.03.071]
41. Siyi Yu, Dekun Ma, Chenze Qi, Dongpeng Yang, Shaoming Huang.  (2024)  Brilliant thermochromic photonic liquid dominated by electrostatic repulsion.  Materials Today Nano,  26  (100481).  [10.1016/j.mtnano.2024.100481]
42. Shixiang Wu, Hao Kan, Jianqiang Gao, Wenjing Yue, Chunwei Zhang, Song Gao, Yang Li.  (2024)  Convolutional Neural Networks‐Motivated High‐Performance Multi‐Functional Electronic Skin for Intelligent Human‐Computer Interaction.  Nano Energy,  122  (109313).  [10.1016/j.nanoen.2024.109313]
43. He Yunfeng, Cheng Yu, Yang Canhui, Guo Chuan Fei.  (2024)  Creep-free polyelectrolyte elastomer for drift-free iontronic sensing.  NATURE MATERIALS,  (1-8).  [PMID:38514845] [10.1038/s41563-024-01848-6]
44. Ke Wang, Xiao-Xue Wang, Chen-Yu Wang, Meng Yin, Shou-Shan Yu, Ke-Zheng Chen, Sheng-Lin Qiao.  (2024)  Customizable and scalable manufacture of aesthetic ionic conductive silk yarns for e-textile devices.  CHEMICAL ENGINEERING JOURNAL,  487  (150645).  [10.1016/j.cej.2024.150645]
45. Jiale Zhang, Zhuangzhuang Ma, Maojian Li, Minghao Lou, Hongqiang Wang, Lichao Jia.  (2024)  Development of Ultrathin, Breathable, Waterproof, and Durable Nanonet-Supported Ionogel Sensors for Electrophysiological Monitoring.  ADVANCED FUNCTIONAL MATERIALS,  (2415694).  [10.1002/adfm.202415694]
46. Benyuan Yu, Zhongbao Wang, Jie Sun, Jialiang Li, Xin Lei, Shichao Li, Tao Sun, Zhanjun Wu.  (2024)  Energy storaging multifunctional carbon fiber composites based on Nano-SiO2 reinforced epoxy matrix structural electrolytes.  JOURNAL OF APPLIED POLYMER SCIENCE,  142  (5): (e56428).  [10.1002/app.56428]
47. Ruifang Liu, Zhenting Wu, Qiang Li, Sara Shamim, Long Ba.  (2025)  Fully printed field-effect transistor humidity sensor with chitosan/polyvinyl alcohol/nano carbon powder for enhanced moisture sensitivity.  TALANTA,  287  (127679).  [PMID:39919473] [10.1016/j.talanta.2025.127679]
48. Zhang Zheng, Shen Laifa, Xu Xin, Guo Jun, Liu Yang, Zhang Jie, Zhu Zhen, Xu Jiayi, Ji Dingwei, Kong Zhihan, Wang Jing, Wu Qi, Yan Kang, Liu Jinsong, Zhu Kongjun.  (2025)  Graphene oxide/carbon fiber composite structural supercapacitor with stable electrochemical performance under surface load bearing.  Advanced Composites and Hybrid Materials,  (1): (1-16).  [10.1007/s42114-024-01085-0]
49. He Xiangnan, Zhang Biao, Liu Qingjiang, Chen Hao, Cheng Jianxiang, Jian Bingcong, Yin Hanlin, Li Honggeng, Duan Ke, Zhang Jianwei, Ge Qi.  (2024)  Highly conductive and stretchable nanostructured ionogels for 3D printing capacitive sensors with superior performance.  Nature Communications,  15  (1): (1-12).  [PMID:39085229] [10.1038/s41467-024-50797-w]
50. Bang Wu, Weiguang Wu, Rui Ma, Haobing Chen, Yilin Zhao, Yunfan Li, Xiao Lei, Feng Liu.  (2024)  High-Sensitivity and Wide-Range Flexible Ionic Piezocapacitive Pressure Sensors with Porous Hemisphere Array Electrodes.  SENSORS,  24  (2): (366).  [PMID:38257459] [10.3390/s24020366]
51. De-Hui Guan, Xiao-Xue Wang, Cheng-Lin Miao, Jia-Xin Li, Jian-You Li, Xin-Yuan Yuan, Xin-Yue Ma, Ji-Jing Xu.  (2024)  Host–Guest Interactions of Metal–Organic Framework Enable Highly Conductive Quasi-Solid-State Electrolytes for Li–CO2 Batteries.  ACS Nano,  18  (50): (34299-34311).  [PMID:39644251] [10.1021/acsnano.4c12712]
52. Wenting Chen, Feng Hai, Xin Gao, Jingyu Guo, Yikun Yi, Weicheng Xue, Wei Tang, Mingtao Li.  (2024)  In Situ Polymerized Zwitterionic Copolymer Ionic Gel Electrolytes with High Performance for Lithium-Ion Batteries.  ACS Applied Materials & Interfaces,  16  (28): (36696-36704).  [PMID:38958244] [10.1021/acsami.4c05762]
53. Yubin Yuan, Qianyi Yang, Qiang Wu, Xiangrui Bu, Xuming Wang, Weihua Liu, Chuanyu Han, Long Hu, Xin Li, Xiaoli Wang.  (2024)  In-situ copolymerization Ion-Gel-based flexible sensor for wearable dimethyl methylphosphonate detection.  SENSORS AND ACTUATORS B-CHEMICAL,  404  (135274).  [10.1016/j.snb.2024.135274]
54. Jianhua Zeng, Libo Chen, Tianzhao Bu, Ziyue Wang, Likun Gong, Zhi-Bin Zhang, Junqing Zhao, Zhong Lin Wang, Chi Zhang.  (2024)  Intrinsically stretchable tribotronic mechanoplastic artificial synapse.  CHEMICAL ENGINEERING JOURNAL,  492  (152412).  [10.1016/j.cej.2024.152412]
55. Yaoxian Hu, Hui Su, Wensen Liu, Zhaowu Zhu, Tao Qi.  (2025)  Ionic liquid-assisted highly selective lithium extraction from magnesium-rich brines using phenyl phosphate.  SEPARATION AND PURIFICATION TECHNOLOGY,  363  (132245).  [10.1016/j.seppur.2025.132245]
56. Dongmei Wang, Rui Wang, Shaoyun Chen, Jianhong Gao, Cuifang Cai, Yanyu Zheng, Xiaoying Liu, Bo Qu, Nairong Chen, Dongxian Zhuo.  (2024)  Low viscosity and highly flexible stereolithographic 3D printing resins for flexible sensors.  MATERIALS & DESIGN,  243  (113052).  [10.1016/j.matdes.2024.113052]
57. Hu Yang, Qi Chenze, Ma Dekun, Yang Dongpeng, Huang Shaoming.  (2024)  Multicolor recordable and erasable photonic crystals based on on-off thermoswitchable mechanochromism toward inkless rewritable paper.  Nature Communications,  15  (1): (1-10).  [PMID:38969630] [10.1038/s41467-024-49860-3]
58. Qiqi Zhou, Qi Chen, Wangjie Xu, Feng Wang, Xiaoqing Du, Yufan Zhou, Yulin Zhan, Man Jiang.  (2024)  Nitrogen and sulfur co-doped carbonized lignin nanotubes for supercapacitor applications.  CHEMICAL ENGINEERING JOURNAL,  496  (154126).  [10.1016/j.cej.2024.154126]
59. Ya-Hsin Pai, Chen Xu, Renyang Zhu, Xinyi Ding, Shengqiang Bai, Ziqi Liang, Lidong Chen.  (2024)  Piezoelectric-Augmented Thermoelectric Ionogels for Self-Powered Multimodal Medical Sensors.  ADVANCED MATERIALS,  (2414663).  [PMID:39651801] [10.1002/adma.202414663]
60. Tong Guan, Huayang Li, Jinyun Liu, Wuxu Zhang, Siying Wang, Wentao Ye, Baoru Bian, Xiaohui Yi, Yuanzhao Wu, Yiwei Liu, Juan Du, Jie Shang, Run-Wei Li.  (2025)  Preparation of Ion Composite Photosensitive Resin and Its Application in 3D-Printing Highly Sensitive Pressure Sensor.  SENSORS,  25  (5): (1348).  [PMID:40096106] [10.3390/s25051348]
61. Zekun Yang, Yunlong Zhao, Yihui Lan, Menghui Xiang, Guirong Wu, Junbin Zang, Zhidong Zhang, Chenyang Xue, Libo Gao.  (2024)  Screen-Printable Iontronic Pressure Sensor with Thermal Expansion Microspheres for Pulse Monitoring.  ACS Applied Materials & Interfaces,  16  (30): (39561-39571).  [PMID:39039805] [10.1021/acsami.4c05688]
62. Wei Xiao, Xiang Shengxin, Meng Chongguang, Chen Zhishui, Cao Shuze, Hong Jianlong, Duan Shengshun, Liu Lei, Zhang Huiyun, Shi Qiongfeng, Shen Guozhen, Wu Jun.  (2025)  Sensory Fiber-Based Electronic Device as Intelligent and Natural User Interface.  Advanced Fiber Materials,  (1-14).  [10.1007/s42765-025-00524-x]
63. Yichuan Zhang, Yajie Zhang, Wenjiang Deng, Qinglin Li, Mingming Guo, Guangming Chen.  (2024)  Skin-Like Soft Thermoelectric Composites with a “J-Shaped” Stress–Strain Behavior for Self-Powered Strain Sensing.  ADVANCED FUNCTIONAL MATERIALS,  (2420644).  [10.1002/adfm.202420644]
64. Yunfei Yu, Xue Yang, Jie Chen, Chenchen Zhang, Wei Lin, Jianqiang Meng.  (2025)  Spontaneous and rapid self-healing ionogels membrane based on dual dynamic crosslinking networks strategy for high-efficiency CO2 separation.  SEPARATION AND PURIFICATION TECHNOLOGY,  362  (131916).  [10.1016/j.seppur.2025.131916]
65. Zheng Zhang, Laifa Shen, Xin Xu, Yang Liu, Tianyu Xia, Zhen Zhu, Jiayi Xu, Jing Wang, Qi Wu, Kang Yan, Jinsong Liu, Hao Dong, Kongjun Zhu.  (2025)  Study of the Design and Performance of Multibody Carbon Fiber Structural Supercapacitors with Superior Mechanical and Electrochemical Properties.  ACS Applied Energy Materials,  (4): (2485-2497).  [10.1021/acsaem.4c03072]
66. Ruifang Liu, Zhenting Wu, Chaoyi Yin, Long Ba.  (2024)  The electrical properties of Highly flexible ion gel capacitor based on PVDF.  CURRENT APPLIED PHYSICS,  68  (51).  [10.1016/j.cap.2024.08.015]
67. Qiannan Li, Linyu Mei, Linyu Mei, Linyu Mei, Kaixi Bi, Liuyu Hou, Shuai Zhang, Shuqi Han, Miaoli Guo, Shengguo Zhang, Dianyu Wu, Jiliang Mu, Xiujian Chou, Xiujian Chou.  (2024)  Tunable terahertz absorption of ion gel-graphene hybrids based on the Salisbury effect.  OPTICS EXPRESS,  32  (7): (11838-11848).  [PMID:38571022] [10.1364/OE.519866]
68. Chenxi Liu, Mengze Li, Yifan Wang, Zijie Hou, Jian Chen, Kun Cao, Lihui Liu, Shufen Chen.  (2024)  Unravelling the Electrical Field Induced Ion Migration in Flexible OLEDs with PEDOT:PSS Electrodes.  ACS Applied Materials & Interfaces,  16  (45): (62469-62480).  [PMID:39497551] [10.1021/acsami.4c13460]
69. Liqiang Xu, Shuren Shao, Xingyuan Lu, Dong Wang, Aimin Zhang, Jihai Zhang.  (2024)  Wrinkle-enabled hydrophobic underwater stable ionic skin with unique positive resistance effect.  CHEMICAL ENGINEERING JOURNAL,  496  (153454).  [10.1016/j.cej.2024.153454]

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