Wafer‐Scale Growth and Transfer of High‐Quality MoS2 Array by Interface Design for High‐Stability Flexible Photosensitive Device

Author:

Lü Bingchen12,Chen Yang12ORCID,Ma Xiaobao12,Shi Zhiming12,Zhang Shanli12,Jia Yuping12,Li Yahui12,Cheng Yuang12,Jiang Ke12,Li Wenwen3,Zhang Wei3,Yue Yuanyuan4,Li Shaojuan12,Sun Xiaojuan12ORCID,Li Dabing12ORCID

Affiliation:

1. Key Laboratory of Luminescence Science and Technology Chinese Academy of Sciences & State Key Laboratory of Luminescence and Applications Changchun Institute of Optics Fine Mechanics and Physics Chinese Academy of Sciences Changchun 130033 P. R. China

2. Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 P. R. China

3. Key Laboratory of Automobile Materials MOE and School of Materials Science & Engineering and Electron Microscopy Center and International Center of Future Science and Jilin Provincial International Cooperation Key Laboratory of High‐Efficiency Clean Energy Materials Jilin University Changchun 130012 P. R. China

4. School of Management Science and Information Engineering Jilin University of Finance and Economics Changchun 130117 P. R. China

Abstract

AbstractTransition metal disulfide compounds (TMDCs) emerges as the promising candidate for new‐generation flexible (opto‐)electronic device fabrication. However, the harsh growth condition of TMDCs results in the necessity of using hard dielectric substrates, and thus the additional transfer process is essential but still challenging. Here, an efficient strategy for preparation and easy separation‐transfer of high‐uniform and quality‐enhanced MoS2 via the precursor pre‐annealing on the designed graphene inserting layer is demonstrated. Based on the novel strategy, it achieves the intact separation and transfer of a 2‐inch MoS2 array onto the flexible resin. It reveals that the graphene inserting layer not only enhances MoS2 quality but also decreases interfacial adhesion for easy separation‐transfer, which achieves a high yield of ≈99.83%. The theoretical calculations show that the chemical bonding formation at the growth interface has been eliminated by graphene. The separable graphene serves as a photocarrier transportation channel, making a largely enhanced responsivity up to 6.86 mA W−1, and the photodetector array also qualifies for imaging featured with high contrast. The flexible device exhibits high bending stability, which preserves almost 100% of initial performance after 5000 cycles. The proposed novel TMDCs growth and separation‐transfer strategy lightens their significance for advances in curved and wearable (opto‐)electronic applications.

Funder

National Natural Science Foundation of China

National Basic Research Program of China

Natural Science Foundation of Jilin Province

Youth Innovation Promotion Association of the Chinese Academy of Sciences

Publisher

Wiley

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