Encapsulation and Outdoor Testing of Perovskite Solar Cells: Comparing Industrially Relevant Process with a Simplified Lab Procedure

被引:92
作者
Emery, Quiterie [1 ]
Remec, Marko [1 ,2 ]
Paramasivam, Gopinath [1 ]
Janke, Stefan [1 ]
Dagar, Janardan [1 ]
Ulbrich, Carolin [1 ]
Schlatmann, Rutger [1 ]
Stannowski, Bernd [1 ]
Unger, Eva [1 ]
Khenkin, Mark [1 ]
机构
[1] Helmholtz Zentrum Berlin Mat & Energie GmbH, D-12489 Berlin, Germany
[2] Univ Ljubljana, Fac Elect Engn, Ljubljana 1000, Slovenia
关键词
perovskite solar cell; encapsulation; outdoor testing; IEC damp heat test; stability; STABILITY ENHANCEMENT; PERFORMANCE; EFFICIENCY; LIFETIME;
D O I
10.1021/acsami.1c14720
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Perovskite solar cells (PSCs) have shown great potential for next-generation photovoltaics. One of the main barriers to their commercial use is their poor long-term stability under ambient conditions and, in particular, their sensitivity to moisture and oxygen. Therefore, several encapsulation strategies are being developed in an attempt to improve the stability of PSCs in a humid environment. The lack of common testing procedures makes the comparison of encapsulation strategies challenging. In this paper, we optimized and investigated two common encapsulation strategies: lamination-based glass-glass encapsulation for outdoor operation and commercial use (COM) and a simple glue-based encapsulation mostly utilized for laboratory research purposes (LAB). We compare both approaches and evaluate their effectiveness to impede humidity ingress under three different testing conditions: on-shelf storage at 21 degrees C and 30% relative humidity (RH) (ISOS-D1), damp heat exposure at 85 degrees C and 85% RH (ISOS-D3), and outdoor operational stability continuously monitoring device performance for 10 months under maximum power point tracking on a roof-top test site in Berlin, Germany (ISOS-O3). LAB encapsulation of perovskite devices consists of glue and a cover glass and can be performed at ambient temperature, in an inert environment without the need for complex equipment. This glue-based encapsulation procedure allowed PSCs to retain more than 93% of their conversion efficiency after 1566 h of storage in ambient atmosphere and, therefore, is sufficient and suitable as an interim encapsulation for cell transport or short-term experiments outside an inert atmosphere. However, this simple encapsulation does not pass the IEC 61215 damp heat test and hence results in a high probability of fast degradation of the cells under outdoor conditions. The COM encapsulation procedure requires the use of a vacuum laminator and the cells to be able to withstand a short period of air exposure and at least 20 min at elevated temperatures (in our case, 150 degrees C). This encapsulation method enabled the cells to pass the IEC 61215 damp heat test and even to retain over 95% of their initial efficiency after 1566 h in a damp heat chamber. Above all, passing the damp heat test for COM-encapsulated devices translates to devices fully retaining their initial efficiency for the full duration of the outdoor test (>10 months). To the best of the authors' knowledge, this is one of the longest outdoor stability demonstrations for PSCs published to date. We stress that both encapsulation approaches described in this work are useful for the scientific community as they fulfill different purposes: the COM for the realization of prototypes for long-term real-condition validation and, ultimately, commercialization of perovskite solar cells and the LAB procedure to enable testing and carrying out experiments on perovskite solar cells under noninert conditions.
引用
收藏
页码:5159 / 5167
页数:9
相关论文
共 50 条
[1]   Materials and methods for encapsulation of OPV: A review [J].
Ahmad, Jakaria ;
Bazaka, Kateryna ;
Anderson, Liam J. ;
White, Ronald D. ;
Jacob, Mohan V. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2013, 27 :104-117
[2]   Influence of air degradation on morphology, crystal size and mechanical hardness of perovskite film [J].
Al Mamun, Abdullah ;
Mohammed, Yousuf ;
Ava, Tanzila Tasnim ;
Namkoong, Gon ;
Elmustafa, Abdelmageed A. .
MATERIALS LETTERS, 2018, 229 :167-170
[3]   Toward Commercialization of Stable Devices: An Overview on Encapsulation of Hybrid Organic-Inorganic Perovskite Solar Cells [J].
Aranda, Clara A. ;
Calio, Laura ;
Salado, Manuel .
CRYSTALS, 2021, 11 (05)
[4]   Spontaneous Passivation of Hybrid Perovskite by Sodium Ions from Glass Substrates: Mysterious Enhancement of Device Efficiency Revealed [J].
Bi, Cheng ;
Zheng, Xiaopeng ;
Chen, Bo ;
Wei, Haotong ;
Huang, Jinsong .
ACS ENERGY LETTERS, 2017, 2 (06) :1400-1406
[5]   23.6%-efficient monolithic perovskite/silicon tandem solar cells with improved stability [J].
Bush, Kevin A. ;
Palmstrom, Axel F. ;
Yu, Zhengshan J. ;
Boccard, Mathieu ;
Cheacharoen, Rongrong ;
Mailoa, Jonathan P. ;
McMeekin, David P. ;
Hoye, Robert L. Z. ;
Bailie, Colin D. ;
Leijtens, Tomas ;
Peters, Ian Marius ;
Minichetti, Maxmillian C. ;
Rolston, Nicholas ;
Prasanna, Rohit ;
Sofia, Sarah ;
Harwood, Duncan ;
Ma, Wen ;
Moghadam, Farhad ;
Snaith, Henry J. ;
Buonassisi, Tonio ;
Holman, Zachary C. ;
Bent, Stacey F. ;
McGehee, Michael D. .
NATURE ENERGY, 2017, 2 (04)
[6]  
Cattaneo G., 2015, Photovoltaics International, V27, P1
[7]  
Cheacharoen R, 2018, WORL CON PHOTOVOLT E, P3498, DOI 10.1109/PVSC.2018.8547430
[8]   Encapsulating perovskite solar cells to withstand damp heat and thermal cycling [J].
Cheacharoen, Rongrong ;
Boyd, Caleb C. ;
Burkhard, George F. ;
Leijtens, Tomas ;
Raiford, James A. ;
Bush, Kevin A. ;
Bent, Stacey F. ;
McGehee, Michael D. .
SUSTAINABLE ENERGY & FUELS, 2018, 2 (11) :2398-2406
[9]   Design and understanding of encapsulated perovskite solar cells to withstand temperature cycling [J].
Cheacharoen, Rongrong ;
Rolston, Nicholas ;
Harwood, Duncan ;
Bush, Kevin A. ;
Dauskardt, Reinhold H. ;
McGehee, Michael D. .
ENERGY & ENVIRONMENTAL SCIENCE, 2018, 11 (01) :144-150
[10]   Achieving Resistance against Moisture and Oxygen for Perovskite Solar Cells with High Efficiency and Stability [J].
Chi, Weiguang ;
Banerjee, Sanjay K. .
CHEMISTRY OF MATERIALS, 2021, 33 (12) :4269-4303