TY - JOUR
T1 - Improving Harsh Environmental Stability of Few-Layer Black Phosphorus by Local Charge Transfer
AU - Wang, Ning
AU - Liu, Haining
AU - Zhou, Xi
AU - Luo, Qingyuan
AU - Yang, Xue
AU - Yang, Hongyan
AU - Shu, Haibo
AU - Xu, Hua
AU - Zhang, Qiuyu
AU - Hildebrandt, Diane
AU - Liu, Xinying
AU - Qiao, Shanlin
AU - Liu, Bilu
AU - Feng, Qingliang
N1 - Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2022/8/19
Y1 - 2022/8/19
N2 - Few-layer black phosphorus (FL-BP) is a promising high-mobility semiconductor with thickness-dependent direct bandgap varying from visible to mid-infrared region. The poor stability under harsh environment, stemming from irreversible oxidization of P atoms with lone pair electrons, restricts its practical applications. Herein, an electrochemical intercalation and in situ electrochemical deposition (EI&ED) approach to produce scalable Au nanoparticles/FL-BP crystals with enhanced stability in harsh environment is developed. In this approach, the chemical reactivity of BP is significantly suppressed via the efficient local charge transfer from FL-BP to electrochemically deposited Au nanoparticles. Thus obtained Au/FL-BP based nano-devices show good stability under harsh environment, including i) high humidity of 95%, ii) immersibility in organic agents for as long as 45 days, and iii) annealing at 573 K for 9 h. In addition, compared to bare FL-BP crystals, Au/FL-BP based photodetectors present 50- and 36-fold improvement of photoresponsivity at 1550 and 1850 nm via the surface plasmonic enhancement effect. This EI&ED method can produce ultra-stable FL-BP crystals at large-scale, which resolves the crucial barriers in using FL-BP in large-scale electronic and optoelectronic devices.
AB - Few-layer black phosphorus (FL-BP) is a promising high-mobility semiconductor with thickness-dependent direct bandgap varying from visible to mid-infrared region. The poor stability under harsh environment, stemming from irreversible oxidization of P atoms with lone pair electrons, restricts its practical applications. Herein, an electrochemical intercalation and in situ electrochemical deposition (EI&ED) approach to produce scalable Au nanoparticles/FL-BP crystals with enhanced stability in harsh environment is developed. In this approach, the chemical reactivity of BP is significantly suppressed via the efficient local charge transfer from FL-BP to electrochemically deposited Au nanoparticles. Thus obtained Au/FL-BP based nano-devices show good stability under harsh environment, including i) high humidity of 95%, ii) immersibility in organic agents for as long as 45 days, and iii) annealing at 573 K for 9 h. In addition, compared to bare FL-BP crystals, Au/FL-BP based photodetectors present 50- and 36-fold improvement of photoresponsivity at 1550 and 1850 nm via the surface plasmonic enhancement effect. This EI&ED method can produce ultra-stable FL-BP crystals at large-scale, which resolves the crucial barriers in using FL-BP in large-scale electronic and optoelectronic devices.
KW - electrochemical intercalations and electrochemical depositions
KW - few-layer black phosphorus
KW - field effect transistors
KW - harsh environmental stability
KW - photodetectors
UR - http://www.scopus.com/inward/record.url?scp=85131962650&partnerID=8YFLogxK
U2 - 10.1002/adfm.202203967
DO - 10.1002/adfm.202203967
M3 - 文章
AN - SCOPUS:85131962650
SN - 1616-301X
VL - 32
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 34
M1 - 2203967
ER -