Highlights of mainstream solar cell efficiencies in 2021

Wenzhong SHEN , Yixin ZHAO , Feng LIU

Front. Energy ›› 2022, Vol. 16 ›› Issue (1) : 1 -8.

PDF (115KB)
Front. Energy ›› 2022, Vol. 16 ›› Issue (1) : 1 -8. DOI: 10.1007/s11708-022-0816-x
NEWS & HIGHLIGHTS
NEWS & HIGHLIGHTS

Highlights of mainstream solar cell efficiencies in 2021

Author information +
History +
PDF (115KB)

Cite this article

Download citation ▾
Wenzhong SHEN, Yixin ZHAO, Feng LIU. Highlights of mainstream solar cell efficiencies in 2021. Front. Energy, 2022, 16(1): 1-8 DOI:10.1007/s11708-022-0816-x

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

11th Edition of the international technology roadmap photovoltaics (ITRPV). 2020–4, available at the

[2]

Bellini E. Saudi Arabia’s second PV tender draws world record low bid of $0.0104/kWh. 2021–4, available at

[3]

Green M A. The passivated emitter and rear cell (PERC): from conception to mass production. Solar Energy Materials and Solar Cells, 2015, 143: 190–197

[4]

Yoshikawa K, Kawasaki H, Yoshida W, Silicon heterojunction solar cell with interdigitated back contacts for a photoconversion efficiency over 26%. Nature Energy, 2017, 2(5): 1–8

[5]

Hollemann C, Haase F, Schäfer S, 26.1%-efficient POLO-IBC cells: quantification of electrical and optical loss mechanisms. Progress in Photovoltaics: Research and Applications, 2019, 27(11): 950–958

[6]

Taguchi M, Yano A, Tohoda S, 24.7% record efficiency HIT solar cell on thin silicon wafer. IEEE Journal of Photovoltaics, 2014, 4(1): 96–99

[7]

Ru X, Qu M, Wang J, 25.11% efficiency silicon heterojunction solar cell with low deposition rate intrinsic amorphous silicon buffer layers. Solar Energy Materials and Solar Cells, 2020, 215: 110643

[8]

Sharma M, Panigrahi J, Komarala V K. Nanocrystalline silicon thin film growth and application for silicon heterojunction solar cells: a short review. Nanoscale Advances, 2021, 3(12): 3373–3383

[9]

Yu J, Li J, Zhao Y, Copper metallization of electrodes for silicon heterojunction solar cells: process, reliability and challenges. Solar Energy Materials and Solar Cells, 2021, 224: 110993

[10]

Richter A, Müller R, Benick J, Design rules for high-efficiency both-sides-contacted silicon solar cells with balanced charge carrier transport and recombination losses. Nature Energy, 2021, 6(4): 429–438

[11]

Yan D, Cuevas A, Michel J I, Polysilicon passivated junctions: the next technology for silicon solar cells? Joule, 2021, 5(4): 811–828

[12]

Padhamnath P, Khanna A, Balaji N, Progress in screen-printed metallization of industrial solar cells with SiOx/poly-Si passivating contacts. Solar Energy Materials and Solar Cells, 2020, 218: 110751

[13]

Zheng P, Yang J, Wang Z, Detailed loss analysis of 24.8% large-area screen-printed n-type solar cell with polysilicon passivating contact. Cell Reports Physical Science, 2021, 2(10): 100603

[14]

NREL. NREL best research-cell efficiencies: emerging photovoltaics. 2021–12–29, available at

[15]

Green M A, Dunlop E D, Hohl-Ebinger J, Solar cell efficiency tables (version 59). Progress in Photovoltaics: Research and Applications, 2022, 30(1): 3–12

[16]

NREL. NREL best research cell efficiency chart. 2021–12–03, available at

[17]

Min H, Lee D Y, Kim J, Perovskite solar cells with atomically coherent interlayers on SnO2 electrodes. Nature, 2021, 598(7881): 444–450

[18]

News release: 21.4%! Microquanta sets new efficiency world record for perovskite minimodule. 2021–12–07, available at

[19]

Peng J, Walter D, Ren Y, Nanoscale localized contacts for high fill factors in polymer-passivated perovskite solar cells. Science, 2021, 371(6527): 390–395

[20]

Jiang X, Li H, Zhou Q, One-step synthesis of SnI2·(DMSO)x adducts for high-performance tin perovskite solar cells. Journal of the American Chemical Society, 2021, 143(29): 10970–10976

[21]

Xiao K, Lin R, Han Q, All-perovskite tandem solar cells with 24.2% certified efficiency and area over 1 cm2 using surface-anchoring zwitterionic antioxidant. Nature Energy, 2020, 5(11): 870–880

[22]

Al-Ashouri A, Köhnen E, Li B, Monolithic perovskite/silicon tandem solar cell with>29% efficiency by enhanced hole extraction. Science, 2020, 370(6522): 1300–1309

[23]

Bellini E. Helmholtz center achieves 29.80% efficiency for perovskite/silicon tandem solar cell. 2021–12–07, available at

[24]

Bellini E. HZB scientists announce 24.16% efficiency for tandem CIGS solar cell. 2021–12–07, available at

[25]

Zhang M, Zhu L, Zhou G, Single-layered organic photovoltaics with double cascading charge transport pathways: 18% efficiencies. Nature Communications, 2021, 12(1): 309

[26]

Li C, Zhou J, Song J, Non-fullerene acceptors with branched side chains and improved molecular packing to exceed 18% efficiency in organic solar cells. Nature Energy, 2021, 6(6): 605–613

[27]

Green M, Dunlop E, Hohl-Ebinger J, Solar cell efficiency tables (version 57). Progress in Photovoltaics: Research and Applications, 2021, 29(1): 3–15

[28]

Green M A, Dunlop E D, Hohl-Ebinger J, Solar cell efficiency tables (version 58). Progress in Photovoltaics: Research and Applications, 2021, 29(7): 657–667

[29]

Cui Y, Xu Y, Yao H, Single-junction organic photovoltaic cell with 19% efficiency. Advanced Materials, 2021, 33(41): 2102420

[30]

Wang W, Wu Q, Sun R, Controlling molecular mass of low-band-gap polymer acceptors for high-performance all-polymer solar cells. Joule, 2020, 4(5): 1070–1086

[31]

Sun R, Wang W, Yu H, Achieving over 17% efficiency of ternary all-polymer solar cells with two well-compatible polymer acceptors. Joule, 2021, 5(6): 1548–1565

[32]

Meng L, Zhang Y, Wan X, Organic and solution-processed tandem solar cells with 17.3% efficiency. Science, 2018, 361(6407): 1094–1098

[33]

Zheng Z, Wang J Q, Bi P Q, Tandem organic solar cell with 20.2% efficiency. Joule, 2022, 6: 171–184

RIGHTS & PERMISSIONS

Higher Education Press

AI Summary AI Mindmap
PDF (115KB)

5680

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/