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Download fileDoping effect on conducting polymer-metal Schottky DC generators
journal contribution
posted on 2019-02-01, 00:00 authored by Hao ShaoHao Shao, Jian Fang, Hong WangHong Wang, Hua ZhouHua Zhou, Haitao Niu, F Chen, G Yan, S Fu, Yuying Cao, Tong LinConducting polymer-metal Schottky diodes show an interesting mechanical energy-to-electricity conversion ability to generate direct current (DC) power without rectification. However, little is reported about how dopants in conducting polymer affect the energy conversion behavior of Schottky diodes. In this study, a novel effect of dopants on mechanical energy-to-DC electricity conversion of conducting polymer-metal Schottky devices is demonstrated. Using polyaniline (PANI) as a model, conducting polymers doped with a series of protonic acids is prepared. Without dopant, the device exhibits low mechanical-to-electrical outputs. Protonic acid doping enhances device energy conversion ability, and the dopant molecular dimension plays a significant part in deciding device performance. When HCl is used as dopant, the PANI device could produce peak outputs of 0.9 V and 33.9 µA cm −2 under compressive impact. These novel understandings foster the design of DC generators for various applications.
History
Journal
Advanced electronic materialsVolume
5Issue
2Article number
1800675Pagination
1 - 8Publisher
John Wiley & SonsLocation
Chichester, Eng.Publisher DOI
Link to full text
eISSN
2199-160XLanguage
engPublication classification
C1 Refereed article in a scholarly journalCopyright notice
2018, WILEY-VCH Verlag GmbH & Co. KGaA, WeinheimUsage metrics
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Categories
Keywords
conducting polymersdirect currentsdopantmechanical‐to‐electrical energy conversionSchottky diodesScience & TechnologyTechnologyPhysical SciencesNanoscience & NanotechnologyMaterials Science, MultidisciplinaryPhysics, AppliedScience & Technology - Other TopicsMaterials SciencePhysicsmechanical-to-electrical energy conversionPOLYANILINE NANOFIBERSNANOSTRUCTURESSEMICONDUCTORNANOCOMPOSITESPERFORMANCEMORPHOLOGYNANOTUBESNANOWIRECONTACTDESIGN