A transparent p-type semiconductor designed <i>via</i> a polarizability-enhanced strongly correlated insulator oxide matrix
- Authors
- Lee, Seung Yong; Kim, Inseo; Kim, Hyun Jae; Sim, Sangjun; Lee, Jae-Hoon; Yun, Sora; Bang, Joonho; Park, Kyoung Won; Han, Chul Jong; Kim, Hyun-Min; Yang, Heesun; Kim, Bongjae; Im, Seongil; Facchetti, Antonio; Oh, Min Suk; Lee, Kyu Hyoung; Lee, Kimoon
- Issue Date
- Dec-2024
- Publisher
- Royal Society of Chemistry
- Citation
- Materials Horizons, v.11, no.24
- Indexed
- SCIE
SCOPUS
- Journal Title
- Materials Horizons
- Volume
- 11
- Number
- 24
- URI
- https://scholarworks.gnu.ac.kr/handle/sw.gnu/74432
- DOI
- 10.1039/d4mh00985a
- ISSN
- 2051-6347
2051-6355
- Abstract
- Electron-transporting transparent conducting oxides (TCOs) are a commercial reality, however, hole-transporting counterparts are far more challenging because of limited material design. Here, we propose a strategy for enhancing the hole conductivity without deteriorating the band gap (E-g) and workfunction (Phi) by Cu incorporation in a strongly correlated NiWO4 insulator. The optimal Cu-doped NiWO4 (Cu0.185Ni0.815WO4) exhibits a resistivity reduction of similar to 10(9) times versus NiWO4 as well as band-like charge transport with the hole mobility approaching 7 cm(2) V-1 s(-1) at 200 K, a deep Phi of 5.77 eV, and E-g of 2.8 eV. Experimental and theoretical data reveal that the strength of the electron correlation in NiWO4 is unaffected by Cu incorporation, while the promoted polarizability weakens electron-phonon coupling, promoting the formation of large polarons. Quantum dot light-emitting and oxide p/n junction devices incorporating Cu0.185Ni0.815WO4 exhibit remarkable performances, demonstrating that our approach can be deployed to discover new p-type TCOs.
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