Enhancing the output power of a nanogenerator is essential in applications as a sustainable power source for wireless sensors and microelectronics. We report here a novel approach that greatly enhances piezoelectric power generation by introducing a p-type polymer layer on a piezoelectric semiconducting thin film. Holes at the film surface greatly reduce the piezoelectric potential screening effect caused by free electrons in a piezoelectric semiconducting material. Furthermore, additional carriers from a conducting polymer and a shift in the Fermi level help in increasing the power output. Poly(3-hexylthiophene) (P3HT) was used as a p-type polymer on piezoelectric semiconducting zinc oxide (ZnO) thin film, and phenyl-C61-butyric acid methyl ester (PCBM) was added to P3HT to improve carrier transport. The ZnO/P3HT:PCBM-assembled piezoelectric power generator demonstrated 18-fold enhancement in the output voltage and tripled the current, relative to a power generator with ZnO only at a strain of 0.068%. The overall output power density exceeded 0.88 W/cm3, and the average power conversion efficiency was up to 18%. This high power generation enabled red, green, and blue light-emitting diodes to turn on after only tens of times bending the generator. This approach offers a breakthrough in realizing a high-performance flexible piezoelectric energy harvester for self-powered electronics.
Yang Zhang, Caihong Liu, Jingbin Liu, Jie Xiong, Jingyu Liu, Ke Zhang, Yudong Liu, Mingzeng Peng, Aifang Yu, Aihua Zhang, Yan Zhang, Zhiwei Wang, Junyi Zhai, Zhong Lin Wang
Dukhyun Choi, Keun Young Lee, Mi‐Jin Jin, Soo‐Ghang Ihn, Sungyoung Yun, Xavier Bulliard, Woong Choi, Sangyoon Lee, Sang‐Woo Kim, Jae‐Young Choi, Jong Min Kim, Zhong Lin Wang
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