TY - JOUR
T1 - Dispersion and Tunable Alignment of Colloidal Silver Nanowires in a Nematic Liquid Crystal for Applications in Electric-Optic Devices
AU - Sang, Jingxin
AU - Zhou, Xin
AU - Xia, Ziqi
AU - Sun, Jiatong
AU - Wang, Jianqiang
AU - Shang, Jianhua
AU - Zhang, Yihong
AU - Zhao, Shuguang
AU - Neyts, Kristiaan
N1 - Publisher Copyright:
© 2023 American Chemical Society
PY - 2023/3/1
Y1 - 2023/3/1
N2 - The dispersion and tunable alignment of colloidal nanomaterials is desirable for practical applications in electric-optic (E-O) devices; however, it remains challenging for large one-dimensional nanomaterials with a large aspect ratio. Here, we demonstrate a large-scale, simple, multi-microdomain, and noncontact photoalignment technology to align colloidal silver nanowires (AgNWs, length ∼4.5 μm, diameter ∼70.6 nm) in a liquid crystal (LC) with a high two-dimensional order parameter (about 0.9). The AgNWs are precisely self-assembled via photomasks with twisted nematic and planar alignment models in microdomain regions. The AgNW orientation is tuned with an electric field, through the rotation of an LC director n, which allows three-dimensional (3D) tunable orientation combined with photoalignment. The colloidal dispersions of AgNWs in the LC cell influenced the ion transfer, elastic constant, dielectric anisotropy, and near LC alignment, changing the E-O properties of the LC devices. The 3D tunable orientation of an AgNW by photoalignment and an electric field could provide a new way to assemble large colloidal nanomaterials and fabricate functional E-O devices.
AB - The dispersion and tunable alignment of colloidal nanomaterials is desirable for practical applications in electric-optic (E-O) devices; however, it remains challenging for large one-dimensional nanomaterials with a large aspect ratio. Here, we demonstrate a large-scale, simple, multi-microdomain, and noncontact photoalignment technology to align colloidal silver nanowires (AgNWs, length ∼4.5 μm, diameter ∼70.6 nm) in a liquid crystal (LC) with a high two-dimensional order parameter (about 0.9). The AgNWs are precisely self-assembled via photomasks with twisted nematic and planar alignment models in microdomain regions. The AgNW orientation is tuned with an electric field, through the rotation of an LC director n, which allows three-dimensional (3D) tunable orientation combined with photoalignment. The colloidal dispersions of AgNWs in the LC cell influenced the ion transfer, elastic constant, dielectric anisotropy, and near LC alignment, changing the E-O properties of the LC devices. The 3D tunable orientation of an AgNW by photoalignment and an electric field could provide a new way to assemble large colloidal nanomaterials and fabricate functional E-O devices.
KW - electric−optic devices
KW - liquid crystal
KW - order parameter
KW - photoalignment
KW - self-assembly
KW - silver nanowires
UR - https://www.webofscience.com/wos/woscc/full-record/WOS:000925784400001
UR - https://openalex.org/W4318165120
UR - https://www.scopus.com/pages/publications/85147166200
U2 - 10.1021/acsami.2c20987
DO - 10.1021/acsami.2c20987
M3 - Journal Article
C2 - 36700704
SN - 1944-8244
VL - 15
SP - 11016
EP - 11023
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 8
ER -