Bayan S, Bhattacharya D, Mitra R K, Ray S K
S. N. Bose National Centre for Basic Sciences, Kolkata, West Bengal 700106, India.
Nanotechnology. 2020 Sep 4;31(36):365401. doi: 10.1088/1361-6528/ab9470. Epub 2020 May 19.
Here we demonstrate novel self-powered photodetection using silver (Ag) nanoparticle-loaded two-dimensional graphitic carbon nitride (g-CN) nanosheets triggered by poly-vinylidene fluoride (PVDF)-based flexible piezoelectric nanogenerators. A self-poled PVDF-based nanogenerator has been obtained upon exploiting pristine g-CN nanosheets as a filler material within the PVDF matrix. The fabricated nanogenerator devices are found to be highly efficient in generating the maximum voltage of ∼2.3 V and maximum power ∼110 μWatt/cm, upon finger tapping. Further, the integration of an additional layer of plasmonic Ag nanoparticle-loaded g-CN nanosheets, has led to a significant enhancement of photoresponse. The hybrid plasmonic nanogenerator (with a strain of ∼0.021%) has resulted in self-powered photodetection with a photo-to-dark current ratio of ∼60, as compared to the unstrained device (∼2.0). In contrast to the usual behaviour (positive photoresponse), the exposure of an ultraviolet light lowers the output current indicating a negative photoresponse reported for the first time in such a system. The origin of such negative photoresponse has been attributed to the screening of piezopotential of PVDF by photogenerated carriers of g-CN nanosheets. On the other hand, visible light-induced positive photoresponse has originated from the increment in the current, indicating the useful role of Ag nanoparticles in plasmon-induced hot electron transfer process.
在此,我们展示了一种新型的自供电光探测方法,该方法利用基于聚偏二氟乙烯(PVDF)的柔性压电纳米发电机触发负载银(Ag)纳米颗粒的二维石墨相氮化碳(g-CN)纳米片。通过将原始的g-CN纳米片作为填充材料引入PVDF基体中,获得了一种自极化的基于PVDF的纳米发电机。经发现,所制备的纳米发电机器件在手指轻敲时能够高效地产生约2.3 V的最大电压和约110 μWatt/cm的最大功率。此外,额外添加一层负载等离子体Ag纳米颗粒的g-CN纳米片,显著增强了光响应。与未应变的器件(约2.0)相比,混合等离子体纳米发电机(应变约为0.021%)实现了自供电光探测,其光电流与暗电流之比约为60。与通常的行为(正光响应)相反,紫外光照射会降低输出电流,表明在这样的系统中首次报道了负光响应。这种负光响应的起源归因于g-CN纳米片的光生载流子对PVDF压电势的屏蔽。另一方面,可见光诱导的正光响应源于电流的增加,这表明Ag纳米颗粒在等离子体诱导的热电子转移过程中发挥了重要作用。