Nanostructured P3HT layers fabricated by self-assembly as promising gas sensors

被引:0
作者
Viviani, Emanuele [1 ]
Dal Zilio, Simone [2 ]
Bertoni, Cristina [3 ,4 ]
Fraleoni-Morgera, Alessandro [5 ,6 ,7 ]
机构
[1] Univ Trieste, Dept Engn & Architecture, Artificial Percept Lab, Trieste, Italy
[2] IOM TASC CNR, Basovizza, TS, Italy
[3] Electrolux Italia SpA, GTC, Cso Lino Zanussi 30, I-33080 Porcia, PN, Italy
[4] Univ Trieste, Dept Engn & Architecture, Sensors & Innovat Lab SAIL, Trieste, Italy
[5] Univ Trieste, Dept Engn & Architecture, Flextron Lab, Trieste, Italy
[6] Elettra Sincrotrone Trieste, Organ OptoElect, Basovizza, TS, Italy
[7] CNR Nano S3, Modena, Italy
来源
2015 11TH CONFERENCE ON PH.D. RESEARCH IN MICROELECTRONICS AND ELECTRONICS (PRIME) | 2015年
关键词
P3HT; polymer nanofibers; gas sensing; chemiresistor; POLY(3-HEXYLTHIOPHENE) TRANSISTORS; SOLID-STATE; THIN-FILM; MORPHOLOGY; ELECTRODE; MOBILITY;
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Poly(3-hexylthiophene) (P3HT) nanofibers fabricated by self-assemby have been used as active sensing layers in chemiresistive gas sensors for acetone, ammonia and water. Their response has been compared to that of analogous devices in which P3HT was present as a plain, non-nanostructured layer. The results of this comparison show that nanofiber-based sensors have faster signal decay times and complete baseline recovery even after being exposed to saturated vapors of the analytes. Moreover, the current response of nanofiber-based devices increases by one order of magnitude or more upon exposure to the analyte, while for plain layers this increase is about 50% at maximum. Finally, on the basis of the collected data, a correlation between the analyte polarizability and the 90% baseline recovery times seems to exist, likely due to the occurrence of just physical adsorption (and not also of vapor penetration) of the analyte onto the polymer surface.
引用
收藏
页码:385 / 388
页数:4
相关论文
共 25 条
[1]   Cross-reactive chemical sensor arrays [J].
Albert, KJ ;
Lewis, NS ;
Schauer, CL ;
Sotzing, GA ;
Stitzel, SE ;
Vaid, TP ;
Walt, DR .
CHEMICAL REVIEWS, 2000, 100 (07) :2595-2626
[2]   Enhanced mobility of poly(3-hexylthiophene) transistors by spin-coating from high-boiling-point solvents [J].
Chang, JF ;
Sun, BQ ;
Breiby, DW ;
Nielsen, MM ;
Sölling, TI ;
Giles, M ;
McCulloch, I ;
Sirringhaus, H .
CHEMISTRY OF MATERIALS, 2004, 16 (23) :4772-4776
[3]   Electrical and optical evaluation of polymer composites for chemical sensing applications [J].
Dendrinos, G. ;
Quercia, L. ;
Raptis, I. ;
Manoli, K. ;
Chatzandroulis, S. ;
Goustouridis, D. ;
Beltsios, K. .
MICROELECTRONIC ENGINEERING, 2009, 86 (4-6) :1289-1292
[4]   Investigation of the physics of sensing in organic field effect transistor based sensors [J].
Duarte, Davianne ;
Dodabalapur, Ananth .
JOURNAL OF APPLIED PHYSICS, 2012, 111 (04)
[5]   Charge transport and trapping in organic field effect transistors exposed to polar analytes [J].
Duarte, Davianne ;
Sharma, Deepak ;
Cobb, Brian ;
Dodabalapur, Ananth .
APPLIED PHYSICS LETTERS, 2011, 98 (13)
[6]   Fast fabrication over large areas of P3HT nanostructures with high supramolecular order [J].
Fraleoni-Morgera, Alessandro ;
Palma, Giuseppina ;
Plaisier, Jasper R. .
RSC ADVANCES, 2013, 3 (36) :15664-15669
[7]   Fast Fabrication of Large-Area, Nanostructured Arrays from Polymers or Carbon Nanotubes by Wet-Processing [J].
Fraleoni-Morgera, Alessandro .
SMALL, 2011, 7 (03) :321-325
[8]   Conjugated polymer-based organic solar cells [J].
Guenes, Serap ;
Neugebauer, Helmut ;
Sariciftci, Niyazi Serdar .
CHEMICAL REVIEWS, 2007, 107 (04) :1324-1338
[9]   Hybridized conducting polymer chemiresistive nano-sensors [J].
Hangarter, Carlos M. ;
Chartuprayoon, Nicha ;
Hernandez, Sandra C. ;
Choa, Yongho ;
Myung, Nosang V. .
NANO TODAY, 2013, 8 (01) :39-55
[10]   In-situ chemiresistor sensor package for real-time detection of volatile organic compounds in soil and groundwater [J].
Ho, CK ;
Hughes, RC .
SENSORS, 2002, 2 (01) :23-34