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A novel and stable ultraviolet and infrared intensity sensor in impedance/capacitance modes fabricated from degraded CH 3NH 3PbI 3- xCl x perovskite materials

机译:一种新颖且稳定的紫外线和强度强度,阻抗/电容模式,由降解CH 3 NH 3 PBI < CE:INF LOC =“POST”> 3 - X CL X 钙钛矿材料

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The present situation of COVID-19 diverted our focus towards utilizing the degraded solar cells for sensor application, this will help in global energy harvesting. So, here is our successful effort to reuse already degraded solar cells as ultraviolet (UV) and infrared (IR) sensor. The spin-coated perovskite (CH3NH3PbI3-XClX) has been already tested for visible light spectrum, as an extension to that now it is utilized as UV and IR intensity sensors to cover the whole spectrum. The employed CH3NH3PbI3-XClXmaterial was used after its efficiency loss has been reached to a saturation point in photovoltaic devices. Each deposited layer was investigated from UV to the IR absorption spectrum for deepening study through UV–vis spectroscopy. In the sandwiched architecture possessing FTO/PEDOT: PSS/Perovskite/PC61BM/CdS/Au symmetry, the perovskite film has been employed as an absorbent layer, however, other layers participation also plays a key role. The resultant device yielded very good sensing performance because of the enhanced excitons generation which is attributed to the precise selection of the interfacial materials, e.g. CdS and PC61BM as an ETM and PEDOT: PSS as HTM. The impedance and capacitance of the devices within 0.01?200?kHz under varied UV and IR illumination intensities were investigated. Measurements showed that as the intensity of the light increased i.e., UV (0–200?W/m2) and IR (0–5800?W/m2), impedance decreased while capacitance increased. The current results are attributed to the increase in the concentration of charges i.e., electron-hole pairs generation depending on the built-in capacitance and frequency of the charges.
机译:Covid-19的现状转移了我们对利用变化的太阳能电池进行传感器应用的重点,这将有助于全球能量收集。因此,这是我们成功地重复使用已经降低的太阳能电池作为紫外线(UV)和红外(IR)传感器。已经测试了旋转涂覆的钙钛矿(CH3NH3PBI3-XCLX)对于可见光光谱,作为现在它的扩展,它被用作UV和IR强度传感器以覆盖整个光谱。在达到光伏器件中的饱和点之后使用所用的CH3NH3PBI3-XclxMaterial。通过UV-Vis光谱研究从UV到IR吸收光谱来研究每个沉积层以加深研究。在拥有FTO / PEDOT的夹层建筑中:PSS / PEROVSKITE / PC61BM / CDS / AU对称性,钙钛矿薄膜已被用作吸收层,然而,其他层次参与也发​​挥着关键作用。由于增强的激子生成,所得装置产生非常良好的感测性能,这归因于界面材料的精确选择。 CD和PC61BM作为ETM和PEDOT:PSS作为HTM。在0.01℃的阻抗和电容在0.01?200?kHz下进行了调查,在不同的紫外线和红外照明强度下进行了调查。测量结果表明,随着光的强度增加,IV(0-200?W / M2)和IR(0-5800?W / M2),电容增加而阻抗降低。当前结果归因于电荷浓度的增加,即,根据电荷的内置电容和频率,电子孔对生成。

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