Synthesis of Silver Nanowires with Reduced Diameters Using Benzoin-Derived Radicals to Make Transparent Conductors with High Transparency and Low Haze
Author(s) -
Zhiqiang Niu,
Fan Cui,
Elisabeth Kuttner,
Chenlu Xie,
Hong Chen,
Yuchun Sun,
Ahmad Dehestani,
Kerstin SchierleArndt,
Peidong Yang
Publication year - 2018
Publication title -
nano letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.853
H-Index - 488
eISSN - 1530-6992
pISSN - 1530-6984
DOI - 10.1021/acs.nanolett.8b02479
Subject(s) - polyol , materials science , passivation , nanowire , transmittance , indium tin oxide , sheet resistance , silver nitrate , indium , radical , optoelectronics , chemical engineering , nanotechnology , electrical conductor , composite material , thin film , layer (electronics) , chemistry , organic chemistry , polyurethane , engineering
Reducing the diameter of silver nanowires has been proven to be an effective way to improve their optoelectronic performance by lessening light attenuation. The state-of-the-art silver nanowires are typically around 20 nm in diameter. Herein we report a modified polyol synthesis of silver nanowires with average diameters as thin as 13 nm and aspect ratios up to 3000. The success of this synthesis is based on the employment of benzoin-derived radicals in the polyol approach and does not require high-pressure conditions. The strong reducing power of radicals allows the reduction of silver precursors to occur at relatively low temperatures, wherein the lateral growth of silver nanowires is restrained because of efficient surface passivation. The optoelectronic performance of as-prepared 13 nm silver nanowires presents a sheet resistance of 28 Ω sq -1 at a transmittance of 95% with a haze factor of ∼1.2%, comparable to that of commercial indium tin oxide (ITO).
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