Physical properties and power conversion efficiency of SrZrX3 (X=S and Se) chalcogenide perovskite solar cell

IF 1.8 4区 物理与天体物理 Q3 PHYSICS, APPLIED
Naincy Pandit, Rashmi Singh, Anand Kumar, Tarun Kumar Joshi, Akash Shukla, Upasana Rani, Peeyush Kumar Kamlesh, Tanuj Kumar, Priyanka, Ajay Singh Verma
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Abstract

The search for efficient substances in energy conversion devices, which are low-cost, highly stable, and not hazardous to humanity has intensified among material scientists. Here, we have investigated the chalcogenide-based metal (Sr — strontium) perovskites in the context of developing materials. We have identified the electrical and optical features of these materials using the modified Becke–Johnson potential, revealing information about their nature. With computed values of 2.009eV for SrZrS3 and 1.096eV for SrZrSe3, respectively, they have shown to be direct bandgap semiconductors. We have also found that both materials exhibit transparency to the striking photon at low energy and demonstrate absorption and optical conduction in the UV region. These materials will be useful in thermoelectric devices because the transport property calculation shows that their figure of merit is unity at both low and high temperatures. In regard to applications, we determined the spectroscopic limited maximum efficiency (SLME) of SrZrS3 (SrZrSe3) and discovered that the efficiency increases from 6.3% to 22.3% (7.9% to 32%) when the film thickness is increased from 100nm to 1μm at 300K, after that it stabilizes. This research shows that these materials ought to be utilized as an alert substance in the design of energy conversion products, and the proposed results are supported by experimental and other theoretical data. We suggest that these substances are strong contenders for use in power conversion equipment depending upon their optical and transport characteristics.

SrZrX3(X=S和Se)瑀包晶太阳能电池的物理性质和功率转换效率
材料科学家们正在加紧寻找用于能源转换设备的高效物质,这些物质成本低、稳定性高,而且不会对人类造成危害。在此,我们以开发材料为背景,研究了以钙钛矿为基础的金属(锶-锶)包晶石。我们利用改良贝克-约翰逊电位确定了这些材料的电学和光学特征,揭示了它们的性质。SrZrS3 和 SrZrSe3 的计算值分别为 2.009eV 和 1.096eV,表明它们是直接带隙半导体。我们还发现,这两种材料在低能量时对撞击光子具有透明度,在紫外区则表现出吸收和光导特性。这些材料在热电设备中将非常有用,因为传输特性计算表明,它们在低温和高温下的功勋值都是统一的。在应用方面,我们测定了 SrZrSe3(SrZrSe3)的光谱有限最大效率(SLME),发现在 300K 温度下,当薄膜厚度从 100nm 增加到 1μm 时,效率从 6.3% 增加到 22.3%(7.9% 到 32%),之后趋于稳定。这项研究表明,在设计能量转换产品时,应将这些材料作为一种警戒物质加以利用。我们认为,根据这些物质的光学和传输特性,它们是电力转换设备的有力竞争者。
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来源期刊
Modern Physics Letters B
Modern Physics Letters B 物理-物理:凝聚态物理
CiteScore
3.70
自引率
10.50%
发文量
235
审稿时长
5.9 months
期刊介绍: MPLB opens a channel for the fast circulation of important and useful research findings in Condensed Matter Physics, Statistical Physics, as well as Atomic, Molecular and Optical Physics. A strong emphasis is placed on topics of current interest, such as cold atoms and molecules, new topological materials and phases, and novel low-dimensional materials. The journal also contains a Brief Reviews section with the purpose of publishing short reports on the latest experimental findings and urgent new theoretical developments.
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