Ti‐Doped ZnO Thin Films‐Based Transparent Photovoltaic for High‐Performance Broadband and Wide‐Field‐of‐View Photocommunication Window

Author:

Ghosh Shuvaraj12ORCID,Patel Malkeshkumar12ORCID,Kumar Naveen12,Lee Junsik12,Lee Junghyun12,Choi Chanhyuk12,Zala Devanshi3,Ray Abhijit34ORCID,Kim Joondong12ORCID

Affiliation:

1. Photoelectric and Energy Device Application Lab (PEDAL) Multidisciplinary Core Institute for Future Energies (MCIFE) Incheon National University Incheon 22012 Republic of Korea

2. Department of Electrical Engineering Incheon National University 119 Academy Rd. Yeonsu Incheon 22012 Republic of Korea

3. Department of Solar Energy School of Energy Technology Pandit Deendayal Energy University Raisan Gandhinagar 382426 India

4. Department of Physics School of Energy Technology Pandit Deendayal Energy University Raisan Gandhinagar 382426 India

Abstract

Transparent photovoltaics (TPVs) are crucial for developing next‐generation see‐through electronics. However, TPV devices (TPVDs) require wide‐bandgap materials that are typically only responsive to short wavelength (ultraviolet, UV) lights rather than visible lights. Is it possible to improve the TPV performance by harvesting the longer wavelength lights without degradation of transparency? It may be satisfied with the function of intermediate energy states, which can utilize the lower photon energy (longer wavelength light) by a two‐step transition. To achieve this, co‐sputtered Ti‐doped ZnO (Ti:ZnO) film‐based high‐performance TPVDs have been developed. Density functional theory analysis revealed the formation of intermediate energy states due to the hybridization of O 2p and Ti 3d orbitals in the Ti:ZnO system. The Ti:ZnO‐based TPVDs show 65% average visible transparency with a power production value of 655 μW cm−2. These devices exhibit good photodetection behavior under UV to visible illuminations with high responsivity and detectivity values of 1.85 A W−1 and 2.5 × 1013 Jones, respectively. Finally, a high‐performance UV to visible broadband and wide‐field‐of‐view photocommunication system is designed based on the TPVDs to generate the fast Morse code signal. Therefore, Ti doping in ZnO provides a good way to improve the device's functionality for futuristic applications.

Funder

Ministry of Science, ICT and Future Planning

Publisher

Wiley

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