1. 新疆大学物理科学与技术学院
2. 新疆固态物理与器件重点实验室
纸质出版:2023
移动端阅览
[1]吴钊峰,沈超,张炜钰,等.棉纤维在气敏传感领域的应用研究[J].新疆大学学报(自然科学版)(中英文),2023,40(02):191-195.
[1]吴钊峰,沈超,张炜钰,等.棉纤维在气敏传感领域的应用研究[J].新疆大学学报(自然科学版)(中英文),2023,40(02):191-195. DOI: 10.13568/j.cnki.651094.651316.2022.06.14.0002.
DOI:10.13568/j.cnki.651094.651316.2022.06.14.0002.
首先,介绍了棉花和气敏传感器的研究现状;其次,围绕棉纤维及其制品具有可再生、易降解、气体通透性好、成本低等优点,重点介绍了棉纤维作为气敏传感材料模板、传感基底和传感材料前体物在气敏传感领域的应用;最后,对棉纤维在气敏传感器领域的应用研究进行了总结和展望.
Firstly
the research status of cotton and gas sensor is introduced
and then we focuses on the application of cotton fiber as precursor of sensing material template
sensing substrate and gas sensing material in the field of gas sensing around the advantages of cotton fiber and its products
such as renewable
easy to degrade
good gas permeability and low costs. Finally
the application of cotton fiber in the field of gas sensors is summarized and prospected.
张泓,郭刚.中国棉花生产区域格局变动及影响分析[J].安徽农业科学, 2022, 50(7):214-218.
唐军虎,贡璐,赵晶晶.塔里木河上游棉区居民对棉花生产正外部性价值的支付意愿调查及其影响因素分析[J].新疆大学学报(自然科学版)(中英文), 2020, 37(4):543-550.
李红丽.新疆农业气象灾害对棉花生长的影响及防范措施[J].智慧农业导刊, 2022, 2(10):22-24.
孙起,刘瑞,王立永,等.新疆棉花主栽品种的分类与优势比较[J].新疆大学学报(自然科学版), 2017, 34(4):493-499.
SHCHIPUNOV Y, POSTNOVA I. Cellulose mineralization as a route for novel functional materials[J]. Advanced Functional Materials, 2018, 28(27):1705042.
SUBBIAH D K, MANI G K, BABU K J, et al. Nanostructured Zn O on cotton fabrics:a novel flexible gas sensor and UV filter[J].Journal of Cleaner Production, 2018, 194:372-382.
曹帅.棉纤维基复合材料的制备及其气敏性能研究[D].乌鲁木齐:新疆大学, 2021.
AGUILAR N M, ARTEAGA-CARDONA F, DE ANDA REYES M E, et al. Magnetic bioplastics based on isolated cellulose from cotton and sugarcane bagasse[J]. Materials Chemistry and Physics, 2019, 238:121921.
VINCENT J E, FONTENOT K R, PREVOST N T, et al. Preparation, characterization and activity of a peptide-cellulosic aerogel protease sensor from cotton[J]. Sensors, 2016, 16(11):1789.
SUN R Q, SUN L B, CHUN Y, et al. Synthesizing nanocrystal-assembled mesoporous magnesium oxide using cotton fibres as exotemplate[J]. Microporous and Mesoporous Materials, 2008, 111(1/2/3):314-322.
LI J M, CHEN J M, WANG H, et al. Front cover:all MXene cotton based supercapacitor powered human body thermal management system[J]. Chem ElectroChem, 2021, 8(4):648-655.
张炜钰.植物纤维传感器的制备及其气敏性能研究[D].乌鲁木齐:新疆大学, 2020.
FEANKE M E, KOPLIN T J, SIMON U. Metal and metal oxide nanoparticles in chemiresistors:does the nanoscale matter?[J].Small, 2006, 2(1):36-50.
鲁文博.金属氧化物基纳米纤维气体传感器的设计与制备[D].青岛:中国石油大学, 2018.
SUN Y F, LIU S B, MENG F L, et al. Metal oxide nanostructures and their gas sensing properties:a review[J]. Sensors, 2012,12(3):2610-2631.
WANG H, LI H Y, LI S C, et al. Fabrication of hollow In2O3-Zn O microtubules by a simple biotemplate method and their gas-sensing properties[J]. Journal of Materials Science:Materials in Electronics, 2017, 28(1):958-962.
YAN S H, MA S Y, XU X L, et al. Synthesis and gas sensing application of porous Ce O2-Zn O hollow fibers using cotton as biotemplates[J]. Materials Letters, 2016, 165:9-13.
MA J W, FAN H Q, TIAN H L, et al. Ultrahigh sensitivity and selectivity chlorine gas sensing of In2O3 hollow microtubules by bio-template method with degreasing cotton[J]. Sensors and Actuators B:Chemical, 2018, 262:17-25.
WU Y Y, TENG Y, ZHANG M, et al. Cooperative modulation of Fe2(MoO4)3 microstructure derived from absorbent cotton for enhanced gas-sensing performance[J]. Sensors and Actuators B:Chemical, 2020, 329:129126.
SONG P, WANG Q, ZHANG Z, et al. Synthesis and gas sensing properties of biomorphic LaFeO3 hollow fibers templated from cotton[J]. Sensors and Actuators B:Chemical, 2010, 147(1):248-254.
ZHU S M, ZHANG D, GU J J, et al. Biotemplate fabrication of SnO2 nanotubular materials by a sonochemical method for gas sensors[J]. Journal of Nanoparticle Research, 2010, 12(4):1389-1400.
WU Z F, ZHOU C Y, ZU B Y, et al. Contactless and rapid discrimination of improvised explosives realized by Mn2+doping tailored Zn S nanocrystals[J]. Advanced Functional Materials, 2016, 26(25):4578-4586.
BAI S L, SUN C Z, WAN P B, et al. Transparent conducting films of hierarchically nanostructured polyaniline networks on flexible substrates for high performance gas sensors[J]. Small, 2015, 11(3):306-310.
ROBINSON B H. E-Waste:an assessment of global production and environmental impacts[J]. Science of the Total Environment,2009, 408(2):183-191.
WANG L L, CHEN D, JIANG K, et al. New insights and perspectives into biological materials for flexible electronics[J]. Chemical Society Reviews, 2017, 46(22):6764-6815.
LIU H, LI M, VOZNYY O, et al. Physically flexible, rapid response gas sensor based on colloidal quantum dot solids[J]. Advanced Materials, 2014, 26(17):2718-2724.
HE X, LIU Q C, ZHOU Y, et al. Graphene oxide-silver/cotton fiber fabric with anti-bacterial and anti-UV properties for wearable gas sensors[J]. Frontiers of Materials Science, 2021, 15(3):406-415.
ZHANG W Y, WU Z F, HU J D, et al. Flexible chemiresistive sensor of polyaniline coated filter paper prepared by spraying for fast and non-contact detection of nitroaromatic explosives[J]. Sensors and Actuators B:Chemical, 2020, 304:127233.
WU Z F, ZHANG M, CAO S, et al. Flexible all-biomass gas sensor based on doped carbon quantum dots/nonwoven cotton with discriminative function[J]. Cellulose, 2022, 29(10):5817-5832.
INDARIT N, KIM Y H, PETCHSANG N, et al. Highly sensitive polyaniline-coated fiber gas sensors for real-time monitoring of ammonia gas[J]. RSC Advances, 2019, 9(46):26773-26779.
HAN J W, KIM B, LI J, et al. A carbon nanotube based ammonia sensor on cotton textile[J]. Applied Physics Letters, 2013,102(19):193104.
ZHANG W Y, ZHANG X P, WU Z F, et al. Mechanical, electromagnetic shielding and gas sensing properties of flexible cotton fiber/polyaniline composites[J]. Composites Science and Technology, 2019, 188:107966.
连素梅,叶曦雯,罗忻棉.纤维结构与理化性能关系分析[J].棉花科学, 2013, 40(1):48-52.
BI H C, YIN Z Y, CAO X H, et al. Carbon fiber aerogel made from raw cotton:a novel, efficient and recyclable sorbent for oils and organic solvents[J]. Advanced Materials, 2013, 25(41):5916-5921.
LIU Y, SHI Z J, GAO Y F, et al. Biomass-swelling assisted synthesis of hierarchical porous carbon fibers for supercapacitor electrodes[J]. Acs Applied Materials and Interfaces, 2016, 8(42):28283-28290.
MA Q, HAO B, MA P C, et al. Flexible sensor based on polymer nanocomposites reinforced by carbon nanotube foam derivated from cotton[J]. Composites Science and Technology, 2020, 192:108103.
CAO S, WU Z F, SUN Q H, et al. Gas sensing properties of cotton-based carbon fibers and Zn O/carbon fibers regulated by changing carbonization temperatures[J]. Sensors and Actuators B:Chemical, 2021, 337(2):129818.
ZHANG L, WANG J, WANG S W, et al. Neuron-inspired multifunctional conductive hydrogels for flexible wearable sensors[J].Journal of Materials Chemistry C, 2022, 10(11):4327-4335.
CAI J, ZHANG L N, ZHOU J P, et al. Novel fibers prepared from cellulose in NaOH/urea aqueous solution[J]. Macromolecular Rapid Communications, 2004, 25(17):1558-1562.
FRANKE M E, KOPLIN T J, SIMON U. Metal and metal oxide nanoparticles in chemiresistors:does the nanoscale matter?[J].Small, 2006, 2(3):301.
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