Review of grain interior, grain boundary, and interface effects of K in CIGS solar cells: Mechanisms for performance enhancement

被引:83
|
作者
Muzzillo, Christopher P. [1 ]
机构
[1] Natl Renewable Energy Lab, 15013 Denver West Pkwy, Golden, CO 80401 USA
关键词
Chalcopyrite; Cu(In; Ga)Se-2; Potassium; Alkali metal; KInSe2; K(In; CU(IN; GA)SE-2; THIN-FILMS; POSTDEPOSITION TREATMENT; DAMP HEAT; STRUCTURAL-PROPERTIES; SURFACE MODIFICATION; IN-SITU; POTASSIUM; EFFICIENCY; POLYCRYSTALLINE; STABILITY;
D O I
10.1016/j.solmat.2017.07.006
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Introducing K into Cu(In,Ga)(Se,S)(2) (CIGS) absorbers has led to recent world record power conversion efficiencies for thin film polycrystalline solar cells. In this work, the diverse phenomena associated with K in CIGS were reviewed, and overarching mechanisms were identified. The effects of K depend on its distribution among grain interiors (GIs), grain boundaries (GBs), and interfaces. High substrate Na and low temperature favor GI K incorporation, while low Na and high temperature favor segregation of K at GBs. Depositing KInSe2 (or KIn1-y,GaySe2) by co-evaporation or KF post-deposition treatment onto CIGS reduces buffer interface recombination in the final solar cells. KInSe2 decomposes in air, which makes characterization difficult and may affect performance. The mechanism for reduced interface recombination could be direct passivation, beneficial compound precursor, oxidation barrier, or favorable diffusion alteration.
引用
收藏
页码:18 / 24
页数:7
相关论文
共 50 条
  • [21] Grain-boundary grooves in perovskite solar cells
    Hao, Mingwei
    Zhou, Yuanyuan
    JOULE, 2024, 8 (04) : 913 - 921
  • [22] Effects of Grain Boundaries on Performance of Hydrogenated Nanocrystalline Silicon Solar Cells
    Su, Tining
    Bobela, David
    Xu, Xixiang
    Ehlert, Scott
    Beglau, Dave
    Yue, Guozhen
    Yan, Baojie
    Banerjee, Arindam
    Yang, Jeff
    Guha, Subhendu
    AMORPHOUS AND POLYCRYSTALLINE THIN-FILM SILICON SCIENCE AND TECHNOLOGY - 2010, 2010, 1245 : 113 - 118
  • [23] GRAIN-BOUNDARY DIFFUSION - STRUCTURAL EFFECTS AND MECHANISMS
    ATKINSON, A
    JOURNAL DE PHYSIQUE, 1985, 46 (NC-4): : 379 - 391
  • [24] Stable High-Performance Perovskite Solar Cells via Grain Boundary Passivation
    Niu, Tianqi
    Lu, Jing
    Munir, Rahim
    Li, Jianbo
    Barrit, Dounya
    Zhang, Xu
    Hu, Hanlin
    Yang, Zhou
    Amassian, Aram
    Zhao, Kui
    Liu, Shengzhong
    ADVANCED MATERIALS, 2018, 30 (16)
  • [25] Solvation-Driven Grain Boundary Passivation Improving the Performance of Perovskite Solar Cells
    Deng, Chunyan
    Tan, Lina
    Wu, Jihuai
    Yang, Yuqian
    Du, Yitian
    Chen, Qi
    Chen, Xia
    Sun, Liuxue
    Yu, Fuda
    Sun, Weihai
    Gao, Peng
    Lan, Zhang
    ADVANCED ENERGY MATERIALS, 2024, 14 (10)
  • [26] Simulation of the effect of grain-boundaries in backside-passivated CIGS solar cells
    Sozzi, Giovanna
    Menozzi, Roberto
    2020 47TH IEEE PHOTOVOLTAIC SPECIALISTS CONFERENCE (PVSC), 2020, : 1145 - 1148
  • [27] Short circuit current variation of CIGS solar cells with grain boundaries recombination velocity
    Singh, L
    Saxena, M
    Bhatnagar, PK
    INDIAN JOURNAL OF PURE & APPLIED PHYSICS, 2004, 42 (11) : 841 - 844
  • [28] Revealing the beneficial role of K in grain interiors, grain boundaries, and at the buffer interface for highly efficient CuInSe2 solar cells
    Muzzillo, Christopher P.
    Poplawsky, Jonathan D.
    Tong, Ho Ming
    Guo, Wei
    Anderson, Tim
    PROGRESS IN PHOTOVOLTAICS, 2018, 26 (10): : 825 - 834
  • [29] Performance enhancement of CIGS solar cells using ITO as buffer layer
    Ghamsari-Yazdel, Fatemeh
    Fattah, Ali
    MICRO AND NANOSTRUCTURES, 2022, 168
  • [30] Performance enhancement of CIGS solar cells using ITO as buffer layer
    Ghamsari-Yazdel, Fatemeh
    Fattah, Ali
    Micro and Nanostructures, 2022, 168