TY - JOUR
T1 - R2R fabrication of multiply indented, hybrid 3D-nanobowls with ultra-high haze for efficiently light trapping
AU - Zhang, Jingchen
AU - Li, Congming
AU - Li, Zhangjian
AU - Ren, Zhebo
AU - Li, Xiangming
AU - Tang, Ye
AU - Liu, Guifang
AU - Zhu, Xinkai
AU - Qiu, Yangfan
AU - Tian, Hongmiao
AU - Wang, Liang
AU - Shao, Jinyou
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/5
Y1 - 2026/5
N2 - Light trapping by nanostructures featuring high transmittance and high haze represents a viable strategy to boost solar cell efficiency via enhanced light absorption. However, low-cost, large-area, and eco-friendly fabrication approaches for such light trapping structures remain elusive. Herein, we demonstrate a new design of film with multiply indented, hybrid three-dimensional (3D)-nanobowls, which can reduce light reflection at large angles by together enhancing light scattering, transmittance, and haze. This kind of nanostructures is generated via roll-to-roll (R2R) UV-nanoimprint process, where the critical template is fabricated by taking advantage of metal displacement reaction between aluminum and zinc ions. The as-fabricated light-trapping film shows ultra-high haze of 98% while keeping favorable transmittance of 87%. Therefore, this light-trapping film, adhered onto polysilicon solar cells, enhances the short-circuit current (JSC) from 4.26% at solar illumination angle of 0°, up to 65.95% at large angle of 85°, as well as 14.29% onto organic solar cells (OSC) under indoor light. To validate practical feasibility, day-time (13-hour) outdoor large-format polysilicon cells experiments reveal that the JSC was enhanced by 5.68% under the sunny condition and 13.6% under the cloudy condition. Furthermore, this film exhibits self-cleaning performance with a water contact angle (WCA) of up to 140°. More importantly, this kind of high-performance film can be fabricated up to more than 25 m within 1 min using our R2R process, demonstrating the high throughput and low cost capability, well meeting the demand for solar cell industry.
AB - Light trapping by nanostructures featuring high transmittance and high haze represents a viable strategy to boost solar cell efficiency via enhanced light absorption. However, low-cost, large-area, and eco-friendly fabrication approaches for such light trapping structures remain elusive. Herein, we demonstrate a new design of film with multiply indented, hybrid three-dimensional (3D)-nanobowls, which can reduce light reflection at large angles by together enhancing light scattering, transmittance, and haze. This kind of nanostructures is generated via roll-to-roll (R2R) UV-nanoimprint process, where the critical template is fabricated by taking advantage of metal displacement reaction between aluminum and zinc ions. The as-fabricated light-trapping film shows ultra-high haze of 98% while keeping favorable transmittance of 87%. Therefore, this light-trapping film, adhered onto polysilicon solar cells, enhances the short-circuit current (JSC) from 4.26% at solar illumination angle of 0°, up to 65.95% at large angle of 85°, as well as 14.29% onto organic solar cells (OSC) under indoor light. To validate practical feasibility, day-time (13-hour) outdoor large-format polysilicon cells experiments reveal that the JSC was enhanced by 5.68% under the sunny condition and 13.6% under the cloudy condition. Furthermore, this film exhibits self-cleaning performance with a water contact angle (WCA) of up to 140°. More importantly, this kind of high-performance film can be fabricated up to more than 25 m within 1 min using our R2R process, demonstrating the high throughput and low cost capability, well meeting the demand for solar cell industry.
KW - haze
KW - light trapping
KW - nanoimprinting
KW - solar cells
KW - transmittance
UR - https://www.scopus.com/pages/publications/105037642808
U2 - 10.26599/NR.2026.94908395
DO - 10.26599/NR.2026.94908395
M3 - 文章
AN - SCOPUS:105037642808
SN - 1998-0124
VL - 19
JO - Nano Research
JF - Nano Research
IS - 5
M1 - 94908395
ER -