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Effectively modulating thermal activated charge transport in organic semiconductors by precise potential barrier engineering
- Source :
- Nature Communications, Vol 12, Iss 1, Pp 1-9 (2021), Nature Communications
- Publication Year :
- 2021
- Publisher :
- Springer Science and Business Media LLC, 2021.
-
Abstract
- The temperature dependence of charge transport dramatically affects and even determines the properties and applications of organic semiconductors, but is challenging to effectively modulate. Here, we develop a strategy to circumvent this challenge through precisely tuning the effective height of the potential barrier of the grain boundary (i.e., potential barrier engineering). This strategy shows that the charge transport exhibits strong temperature dependence when effective potential barrier height reaches maximum at a grain size near to twice the Debye length, and that larger or smaller grain sizes both reduce effective potential barrier height, rendering devices relatively thermostable. Significantly, through this strategy a traditional thermo-stable organic semiconductor (dinaphtho[2,3-b:2′,3′-f]thieno[3,2-b]thiophene, DNTT) achieves a high thermo-sensitivity (relative current change) of 155, which is far larger than what is expected from a standard thermally-activated carrier transport. As demonstrations, we show that thermo-sensitive OFETs perform as highly sensitive temperature sensors.<br />Controlling temperature-depending charge transport in organic semiconductors is key to tailoring their electronic properties. Here, the authors report a potential barrier engineering strategy for modulating thermally-activated charge transport in organic semiconductors.
- Subjects :
- Materials science
Science
General Physics and Astronomy
02 engineering and technology
010402 general chemistry
01 natural sciences
Article
General Biochemistry, Genetics and Molecular Biology
Condensed Matter::Materials Science
symbols.namesake
Thermal
Electronic devices
Rectangular potential barrier
Effective height
Debye length
Multidisciplinary
business.industry
Charge (physics)
General Chemistry
Condensed Matter::Mesoscopic Systems and Quantum Hall Effect
021001 nanoscience & nanotechnology
Sensors and biosensors
0104 chemical sciences
Highly sensitive
Organic semiconductor
Potential barrier height
symbols
Optoelectronics
0210 nano-technology
business
Subjects
Details
- ISSN :
- 20411723
- Volume :
- 12
- Database :
- OpenAIRE
- Journal :
- Nature Communications
- Accession number :
- edsair.doi.dedup.....f6bf3fd80e1b17a1164367293f1da4d2
- Full Text :
- https://doi.org/10.1038/s41467-020-20209-w