TY - JOUR
T1 - Bio-inspired direct patterning functional nanothin microlines
T2 - Controllable liquid transfer
AU - Wang, Qianbin
AU - Meng, Qingan
AU - Wang, Pengwei
AU - Liu, Huan
AU - Jiang, Lei
N1 - Publisher Copyright:
© 2015 American Chemical Society.
PY - 2015/4/28
Y1 - 2015/4/28
N2 - Developing a general and low-cost strategy that enables direct patterning of microlines with nanometer thickness from versatile liquid-phase functional materials and precise positioning of them on various substrates remains a challenge. Herein, with inspiration from the oriental wisdom to control ink transfer by Chinese brushes, we developed a facile and general writing strategy to directly pattern various functional microlines with homogeneous distribution and nanometer-scale thickness. It is demonstrated that the width and thickness of the microlines could be well-controlled by tuning the writing method, providing guidance for the adaptation of this technique to various systems. It is also shown that various functional liquid-phase materials, such as quantum dots, small molecules, polymers, and suspensions of nanoparticles, could directly write on the substrates with intrinsic physicochemical properties well-preserved. Moreover, this technique enabled direct patterning of liquid-phase materials on certain microdomains, even in multiple layered style, thus a microdomain localized chemical reaction and the patterned surface chemical modification were enabled. This bio-inspired direct writing device will shed light on the template-free printing of various functional micropatterns, as well as the integrated functional microdevices.
AB - Developing a general and low-cost strategy that enables direct patterning of microlines with nanometer thickness from versatile liquid-phase functional materials and precise positioning of them on various substrates remains a challenge. Herein, with inspiration from the oriental wisdom to control ink transfer by Chinese brushes, we developed a facile and general writing strategy to directly pattern various functional microlines with homogeneous distribution and nanometer-scale thickness. It is demonstrated that the width and thickness of the microlines could be well-controlled by tuning the writing method, providing guidance for the adaptation of this technique to various systems. It is also shown that various functional liquid-phase materials, such as quantum dots, small molecules, polymers, and suspensions of nanoparticles, could directly write on the substrates with intrinsic physicochemical properties well-preserved. Moreover, this technique enabled direct patterning of liquid-phase materials on certain microdomains, even in multiple layered style, thus a microdomain localized chemical reaction and the patterned surface chemical modification were enabled. This bio-inspired direct writing device will shed light on the template-free printing of various functional micropatterns, as well as the integrated functional microdevices.
KW - bio-inspired
KW - direct writing
KW - microlines
KW - nanothin
UR - https://www.scopus.com/pages/publications/84929121139
U2 - 10.1021/acsnano.5b00861
DO - 10.1021/acsnano.5b00861
M3 - 文章
AN - SCOPUS:84929121139
SN - 1936-0851
VL - 9
SP - 4362
EP - 4370
JO - ACS Nano
JF - ACS Nano
IS - 4
ER -