材料科学
热扩散率
光热治疗
热电性
热的
太阳能
光电子学
能量转换效率
太阳辐照度
光伏系统
工程物理
纳米技术
热力学
气象学
电气工程
电介质
物理
工程类
铁电性
作者
Huan Wang,Li Shiuan Ng,Haitao Li,Hiang Kwee Lee,Jie Han
出处
期刊:Nano Energy
[Elsevier]
日期:2023-04-01
卷期号:108: 108184-108184
被引量:6
标识
DOI:10.1016/j.nanoen.2023.108184
摘要
Pyroelectric technology is an effective strategy to harvest ambient waste heat into electrical energy to tackle global energy and environmental crises. However, current pyroelectric generators are often limited by low effective power output. Herein, we develop a non-contact, solar-induced pyroelectric nanogenerator (S-PENG) which integrates [email protected] as solar-thermal layer and polarized PVDF film as pyroelectric layer. The high thermal conductivity of CNT accelerates the heat transfer process, while its strong solar-thermal effect can be coupled with the plasmonic effect of Au nanoparticles to obtain a hybrid ensemble with superior light absorption and conversion. Notably, the solar-thermal temperature of [email protected]/PVDF rapidly increases from 38 °C to 79.6 °C within 30 s under sunlight irradiation, with a corresponding temperature change rate reaching a maximum of 14.3 °C/s. The drastic temperature fluctuation is crucial to improve the output performance of our S-PENG. More importantly, our S-PENG successfully generates a notable 1.5 mW/m2 output power under a 200 MΩ load (at 20 ℃), thereby overcoming the performance bottleneck of traditional S-PENG designs with micro-watt power output. Our design offers a promising approach to efficiently utilize green solar energy to alleviate our demand on limited energy resources and reduce carbon footprint.
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