Design of color tunable thin film polymer solar cells for photovoltaics printing

Kan Li , Huan-jiong Yin , Ding-zhong Feng , Yun-xiang Yu

Optoelectronics Letters ›› 2020, Vol. 16 ›› Issue (2) : 92 -96.

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Optoelectronics Letters ›› 2020, Vol. 16 ›› Issue (2) : 92 -96. DOI: 10.1007/s11801-020-9069-2
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Design of color tunable thin film polymer solar cells for photovoltaics printing

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Abstract

Color tunable thin film polymer solar cells have demonstrated the potentials of a wide applications in photovoltaics printing, which is significant for ink pollution reduction and energy saving. This work presents a new effective approach to realize color-tuning photovoltaic cells with optical microcavity structures. Aluminum-doped zinc oxide is utilized as electron transport layer material. With its high electrical conductivity, the thickness tuning range can be quite large, which means the cavity length has a wide variation range. It thus provides sufficient space for optical thin film design to obtain multi colors. By the transfer matrix method, device reflection and absorption spectra are numerically investigated. Based on that, the optical principles for color tunability are explored. In further step, the relationship between device photovoltaics performance and reflective colors are also discussed. Finally, the color coordinates and luminosities are calculated. As results, the colors of the devices designed are capable to cover a relatively large region in Commission Internationale de l'Eclairage (CIE) 1931 x, y chromaticity diagram, which is available to be integrated into the advertisement poster boards, building wall printing and other display applications.

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Kan Li, Huan-jiong Yin, Ding-zhong Feng, Yun-xiang Yu. Design of color tunable thin film polymer solar cells for photovoltaics printing. Optoelectronics Letters, 2020, 16(2): 92-96 DOI:10.1007/s11801-020-9069-2

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References

[1]

MartinK, Matthew SW, Eric DG, TsuyoshiS, TakaoS, SerdarS N, SiegfriedB. Nature Communications, 2011, 3: 85

[2]

Jia-weiW, Guo-jiaF, Ping-liQ, QiaoZ, Ni-shuangL, Nan-haiS, YuanT, XiF, FeiC, Xing-ZhongZ. Solar Energy Materials & Solar Cells, 2012, 101: 289

[3]

LukasW, MarcelS, KatharinaP, PhilipS, WilhelmS. Chemical Engineering & Processing, 2013, 68: 38

[4]

da JoseS W, PilK H, MohdY Abd b, JinJ. Nanoscale, 2013, 5: 9324

[5]

KanL, Yao-kangZ, Hong-yuZ, Li-yongN, XuF, Zhi-keL, FengY, Wei-dongS, Hai-fengL, Zi-jianZ. Materials Research Express, 2016, 3: 074006

[6]

KanL, Hong-yuZ, Li-yongN, XuF, Yao-kangZ, Rui-shengG, YouY, FengY, Hai-fengL, Zi-jianZ. Advanced Materials, 2014, 26: 7271

[7]

Man-junX, Wen-feiS, Jun-yiW, Liang-liangH, Wei-chaoC, Xi-changB, Ren-qiangY, Wei-guoZ. Chinese Physics Letters, 2015, 32: 028802

[8]

ZhengC, Zhen-boD, Mao-yangZ, Zhao-yueL, Hai-liangD, YeZ, Yue-HongY, Jian-chaoL. Chinese Physics Letters, 2012, 29: 78801

[9]

Matthew JG, Nathan AC, BenV, Kane MO, Mohammed FA-M, AlaaA-A, MahirN, FurqanA, Warwick JB, Paul CD. Energy Technology, 2015, 3: 428

[10]

RafaelB, PabloR-G, AlbertoM-O, XavierE, MarcM, JordiM. Nature Photonics, 2013, 7: 995

[11]

BingW, Peng-yiL, Yan-wuL, Lin-taoH. Chinese Journal of Luminescence, 2010, 31: 753

[12]

TobiasS, HyunchulO, LuigiP, JohannesK, IvanL, Christoph JB. Organic Electronics, 2011, 12: 1539

[13]

TobiasS, IvanL, NingL, SalinasS, MatthiasS, GerhardS, KarenF, Gebhard JM, MarcusH, Christoph JB. Journal of Materials Chemistry A, 2013, 1: 6004

[14]

Ke-ningM, Wei-dongS, Chen-yingY, XuF, Wen-jiaY, Yue-guangZ, XuL. Scientific Reports, 2016, 6: 19289

[15]

Chen-yingY, Wei-dongS, Yue-guangZ, KanL, XuF, XingZ, XuL. Scientific Reports, 2015, 5: 9285

[16]

OlusegunA, Purna PM, Pra-jwalA, Ming-taiW, Shang-fengY, Qi-quanQ. Energy & Environmental Science, 2013, 6: 3150

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