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Nanoscale Mapping of the Conductivity and Interfacial Capacitance of an Electrolyte-Gated Organic Field-Effect Transistor under Operation
被引:20
|作者:
Kyndiah, Adrica
[1
,2
]
Checa, Marti
[1
]
Leonardi, Francesca
[3
,6
]
Millan-Solsona, Ruben
[1
,2
]
Di Muzio, Martina
[1
]
Tanwar, Shubham
[1
]
Fumagalli, Laura
[4
,5
]
Mas-Torrent, Marta
[3
]
Gomila, Gabriel
[1
,2
]
机构:
[1] Barcelona Inst Sci & Technol BIST, Inst Bioengn Catalonia IBEC, Nanoscale Bioelect Characterizat Grp, Carrer Baldiri & Reixac 11-15, Barcelona 08028, Spain
[2] Univ Barcelona, Dept Engn Elect & Biomed, Carrer Marti & Franques 1, Barcelona 08028, Spain
[3] Inst Ciencia Mat Barcelona ICMAB CSIC, Campus UAB Cerdanyola del Valles, Barcelona 08193, Spain
[4] Univ Manchester, Dept Phys & Astron, Manchester M13 9PL, Lancs, England
[5] Univ Manchester, Natl Graphene Inst, Manchester M13 9PL, Lancs, England
[6] OnePlanet Res Ctr, Wageningen Campus,Bronland 10, NL-6708 WH Wageningen, Netherlands
基金:
欧盟地平线“2020”;
欧洲研究理事会;
英国工程与自然科学研究理事会;
关键词:
atomic force microscopy;
bioelectronic devices;
electrolyte gated organic field effect transistors;
in‐
liquid scanning dielectric microscopy;
organic semiconducting blend;
THIN-FILM TRANSISTORS;
MICROSCOPY;
D O I:
10.1002/adfm.202008032
中图分类号:
O6 [化学];
学科分类号:
0703 ;
摘要:
Probing nanoscale electrical properties of organic semiconducting materials at the interface with an electrolyte solution under externally applied voltages is key in the field of organic bioelectronics. It is demonstrated that the conductivity and interfacial capacitance of the active channel of an electrolyte-gated organic field-effect transistor (EGOFET) under operation can be probed at the nanoscale using scanning dielectric microscopy in force detection mode in liquid environment. Local electrostatic force versus gate voltage transfer characteristics are obtained on the device and correlated with the global current-voltage transfer characteristics of the EGOFET. Nanoscale maps of the conductivity of the semiconducting channel show the dependence of the channel conductivity on the gate voltage and its variation along the channel due to the space charge limited conduction. The maps reveal very small electrical heterogeneities, which correspond to local interfacial capacitance variations due to an ultrathin non-uniform insulating layer resulting from a phase separation in the organic semiconducting blend. Present results offer insights into the transduction mechanism at the organic semiconductor/electrolyte interfaces at scales down to approximate to 100 nm, which can bring substantial optimization of organic electronic devices for bioelectronic applications such as electrical recording on excitable cells or label-free biosensing.
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