材料科学
钙钛矿(结构)
光电子学
异质结
升华(心理学)
卤化物
能量收集
空间电荷
纳米技术
电压
功率密度
电势能
载流子
储能
高压
工作(物理)
薄膜
能量转换效率
辐照
动能
能量转换
作者
Leunam Fernandez-Izquierdo,A. Carrillo-Osuna,Regino Santos-Fernandez,Marlon Danny Jerez-Masaquiza,Martín A. Ruiz-Molina,Rodolfo A. Rodriguez-Davila,Manuel Quevedo-López
标识
DOI:10.1021/acsami.5c21168
摘要
Reliable and long-lasting power sources are crucial for autonomous systems operating in extreme environments, such as space missions, deep-sea sensors, and implantable medical devices. In this regard, alphavoltaic cells, which convert the kinetic energy of α particles into electricity, are a promising alternative due to their potential high energy density and prolonged operational lifetimes. In this article, the use of the inorganic halide perovskite CsPbBr 3 is investigated as the active material in a CsPbBr 3 /Ga 2 O 3 heterojunction alphavoltaic cell. The devices were fabricated using close-space sublimation to deposit thick perovskite thin films and then experimentally tested under 210 Po α irradiation in combination with Monte Carlo-based simulations. The CsPbBr 3 /Ga 2 O 3 heterojunction showed an open-circuit voltage of 1.0 V with a short-circuit current density of 2.2 × 10 –7 A/cm 2 . Experimental charge collection in the resulting devices was 8.5 μC/cm 2 in a capacitor-based setup and 68.69 μC/cm 2 with a multichannel analyzer. The expected charge yield was calculated to be ∼408 μC/cm 2 . More importantly, the device maintained its structural and electrical integrity after prolonged irradiation, demonstrating excellent material stability. These findings establish perovskite-based alphavoltaics as viable candidates for high-efficiency nuclear energy harvesting with potential applications in scalable, autonomous, and maintenance-free power systems. This work represents the first demonstration of thick, close-space sublimation-grown CsPbBr 3 -based alphavoltaic devices exhibiting long-term structural and electrical stability under prolonged α irradiation.
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