PDF下载 分享
[1]冀彦秀,宋振兴*,韦会鸽,等. 聚丙烯酰胺基复合导电水凝胶在柔性压阻传感器领域中的应用 [J].电镀与精饰,2023,(10):53-58.[doi:10.3969/j.issn.1001-3849.2023.10.009]
 Ji Yanxiu,Song Zhenxing*,Wei Huige,et al.Application of polyacrylamide-based composite conductive hydrogel in the field of flexible piezoresistive sensors[J].Plating & Finishing,2023,(10):53-58.[doi:10.3969/j.issn.1001-3849.2023.10.009]
点击复制

聚丙烯酰胺基复合导电水凝胶在柔性压阻传感器领域中的应用

参考文献/References:



[1] Ma X C, Qi Y, Niu Y, et al. Highly sensitive, ultra-reliable flexible piezoelectret sensor for non-contact sitting motion tracking and physiological signal monitoring[J]. Nano Energy, 2023, 111: 108424.

[2] Li Z B, Zou L J, Chu C F, et al. Development of a carbon-based flexible strain sensor for diverse human motion monitoring[J]. Physica Status Solidi (A), 2023, 220(2): 2200617.

[3] Hanna J, Tawk Y, Azar S, et al. Wearable flexible body matched electromagnetic sensors for personalized non-invasive glucose monitoring[J]. Scientific Reports, 2022, 12(1): 14885.

[4] Liang H, Zhang L B, Wu T, et al. Dual-mode flexible sensor based on PVDF/MXene nanosheet/reduced graphene oxide composites for electronic skin[J]. Nanomaterials, 2022, 13(1): 102.

[5] Zhang S C, Xiao Y, Chen H M, et al. Flexible triboelectric tactile sensor based on a robust MXene/leather film for human-machine interaction[J]. ACS applied materials & interfaces, 2023, 15(10): 13802-13812.

[6] Hao S, Li T C, Yang X M, et al. Ultra-stretchable, adhesive, fast self-healable, and three-dimensional printable photoluminescent ionic skin based on hybrid network ionogels[J]. ACS Applied Materials & Interfaces, 2021, 14(1): 2029-2037.

[7] Fan J S, Newell B, Garaia J, et al. Effect of additive manufacturing on β -phase poly(vinylidene fluoride)-based capacitive temperature sensors[J]. Advanced Engineering Materials, 2022, 24(11): 2200485.

[8] Xia Q, Qin Y X, Zheng A B, et al. A Multifunctional biomimetic flexible sensor based novel artificial tactile neuron with perceptual memory[J]. Advanced Materials Interfaces, 2021, 8(23): 2101068.

[9] 权颖楠 . 电阻式编织绳柔性应变传感器的制备及性能评价 [D]. 上海 : 东华大学 , 2020.

[10] Yuan H Y, Li Y, Qian Z H, et al. A piezoresistive sensor with high sensitivity and flexibility based on porous sponge[J]. Nanomaterials, 2022, 12(21): 3833.

[11] 蔡川 . 基于柔性压阻式传感器的脉搏监测装备与系统研究与开发 [D]. 吉林 : 吉林农业大学 , 2021.

[12] 鲁元 . 基于 PDMS/SCF/CNT 的柔性压阻式传感器的研究 [D]. 北京 : 北京化工大学 , 2020.

[13] 朱皓哲 . PDMS 基柔性电容式传感器制备方法的研究 [D]. 北京 : 北京化工大学 , 2021.

[14] 陆云龙 . 柔性电容式传感器的设计、制备和应用研究 [D]. 成都 : 电子科技大学 , 2017.

[15] Nie B, Geng J, Yao T, et al. Sensing arbitrary contact forces with a flexible porous dielectric elastomer[J]. Materials Horizons, 2021, 8(3): 962-971.

[16] 徐云华 . 基于 PZT 柔性压电传感器的混凝土动态冲击应力 / 应变健康监测研究 [D]. 南京 : 东南大学 , 2018.

[17] Dagdeviren C, Su Y, Joe P, et al. Conformable amplified lead zirconate titanate sensors with enhanced piezoelectric response for cutaneous pressure monitoring[J]. Nature Communications, 2014, 5(1): 4496-4506.

[18] Wang J, Lu C, Zhang K. Textile-based strain sensor for human motion detection[J]. Energy & Environmental Materials, 2020, 3(1): 80-100.

[19] Han G S, Su Y F, Nantung T, et al. Mechanism for using piezoelectric sensor to monitor strength gain process of cementitious materials with the temperature effect[J]. Journal of Intelligent Material Systems and Structures, 2021, 32(10): 1128-1139.

[20] Lei H, Zhao J, Ma X, et al. Antibacterial dual network hydrogels for sensing and human health monitoring [J]. Advanced Healthcare Materials, 2021, 10(21): 2101089.

[21] Huang G, Zhang Y, Ouyang J, et al. Application of carbon nanotube-matrix assistant native polyacrylamide gel electrophoresis to the separation of apolipoprotein A-I and complement C3[J]. Analytica Chimica Acta, 2006, 557(1-2): 137-145.

[22] He M, Hou Y, Zhu C, et al. 3D-printing biodegradable PU/PAAM/Gel hydrogel scaffold with high flexibility and self-adaptibility to irregular defects for nonload-bearing bone regeneration[J]. Bioconjugate Chemistry, 2021, 32(8): 1915-1925.

[23] Bai Y Q, Lian Y, Ban C L, et al. Facile synthesis of temperature-resistant hydroxylated carbon black/polyacrylamide nanocomposite gel based on chemical crosslinking and its application in oilfield[J]. Journal of Molecular Liquids, 2021, 329: 115578.

[24] Li Y J, Yang D, Wu Z Y, et al. Self-adhesive, self-healing, biocompatible and conductive polyacrylamide nanocomposite hydrogels for reliable strain and pressure sensors[J]. Nano Energy, 2023, 109: 108324.

[25] Yi Y, Yu X L, Bo W D, et al. Construction of three-dimensional carbon materials-based conductive bonding network in flexible supercapacitor electrodes[J]. Electrochimica Acta, 2023, 440: 141751.

[26] 袁定坤 , 褚维凡 , 倪加惠 . 亚铁氰化铜 - 聚丙烯酰胺 / 羧甲基纤维素 / 石墨烯复合水凝胶的制备及铷吸附性能 [J]. 应用化学 , 2022, 39(11): 1746-1756.

[27] 况培培 , 张一静 , 陈莹 , 等 . 木质素复合氧化石墨烯导电水凝胶制备及性能 [J]. 林业工程学报 , 2022, 7(4): 93-99.

[28] 丁晶晶 , 剧芳 , 刘春华 , 等 . 高强度银纳米线 / 聚丙烯酰胺复合水凝胶的制备及导电性能研究 [J]. 高分子学报 , 2022, 53(8): 942-951.

[29] Archana T, Pratik K, Roshni V, et al. Influence of nanofillers (Ag NPs and C. dots) on the controlled drug release profile of gel atin-grafted-polyacrylamide hydrogel: An in vitro study[J]. Materials Today Communications, 2023, 35: 105922.

[30] Li Y J, Yang D, Wu Z Y, et al. Self-adhesive, self-healing, biocompatible and conductive polyacrylamide nanocomposite hydrogels for reliable strain and pressure sensors[J]. Nano Energy, 2023, 109: 108324.

[31] 王杰 . 聚丙烯酰胺基水凝胶柔性应变传感器的制备及性能 [D]. 西安 : 陕西科技大学 , 2021.

[32] Sangeeta Yadav. Synthesis and properties of polypyrrole/polyacrylamide composite hydrogels[J]. International Journal of Research in Engineering and Technology, 2014, 3(22): 6-7.

[33] Shi J S, Dong F L, Zhao Z H, et al. Construction of polyacrylamide/chitosan quaternary ammonium salt/ferric oxide-tannic acid-polyaniline hydrogels with high detection sensitivity and electromagnetic dual function[J]. Reactive and Functional Polymers, 2023, 186: 105564.

[34] Li T, Wei H G, Ying Y Z, et al. Sodium alginate reinforced polyacrylamide/xanthan gum double network ionic hydrogels for stress sensing and self-powered wearable device applications[J]. Carbohydrate Polymers, 2023, 309: 120678.

[35] 高辉 . 基于聚丙烯酰胺离子水凝胶的柔性自供电电子皮肤研制 [D]. 哈尔滨 : 哈尔滨工业大学 , 2020.

[36] Chen X Y, Zhang D Z, Luan H X, et al. Flexible pressure sensors based on molybdenum disulfide/hydroxyethyl cellulose/polyurethane sponge for motion detection and speech recognition using machine learning[J]. ACS Applied Materials & Interfaces, 2023, 15(1): 2043-2053.

[37] He Z, Su J, Xia Y, et al. Fabrication and photocatalytic performance of Bi 24 O 31 Br 10 nanosphere by a polyacrylamide gel method[J]. Micro & Nano Letters, 2020, 15(8): 499-502.

[38] Liao Y, Duan F, Zhang H, et al. Ultrafast response of spray-on nanocomposite piezoresistive sensors to broadband ultrasound[J]. Carbon, 2019, 143: 743-751.

[39] Dong D, Ma J, Ma Z, et al. Flexible and lightweight microcellular RGO@Pebax composites with synergistic 3D conductive channels and microcracks for piezoresistive sensors[J]. Composites Part A, 2019, 123: 222-231.

[40] Cao Q L, Shu Z, Zhang T Y, et al. Highly elastic, sensitive, stretchable, and skin-inspired conductive sodium alginate/polyacrylamide/gallium composite hydrogel with toughness as a flexible strain sensor[J]. Biomacromolecules, 2022, 23(6): 2603-2613.

[41] 臧亚萍 , 狄重安 , 朱道本 . " 触动 " 脑神经的电子皮肤 [J]. 科学通报 , 2016, 61(11): 1146-1147.

[42] 徐梦达 . 功能化聚丙烯酰胺水凝胶的制备及其应用研究 [D]. 上海 : 华东师范大学 , 2022.

[43] Xue G F, Shi Y T, Wang S J, et al. Merkel cell-inspired skin-like hybrid hydrogels for wearable health monitoring[J]. Chemical Engineering Journal, 2023, 456, 140976.

备注/Memo

收稿日期: 2023-04-18 修回日期: 2023-05-24 作者简介: 冀彦秀( 2000 —),女,本科生, email : 1403359904@qq.com * 通信作者: 宋振兴, email : szxtju@126.com 基金项目: 国家级大学生创新创业训练计划资助项目( 202210057033 )

更新日期/Last Update: 2023-10-07