TY - JOUR
T1 - Preselectable Optical Fingerprints of Heterogeneous Upconversion Nanoparticles
AU - Liao, Jiayan
AU - Zhou, Jiajia
AU - Song, Yiliao
AU - Liu, Baolei
AU - Chen, Yinghui
AU - Wang, Fan
AU - Chen, Chaohao
AU - Lin, Jun
AU - Chen, Xueyuan
AU - Lu, Jie
AU - Jin, Dayong
N1 - Publisher Copyright:
©
PY - 2021/9/22
Y1 - 2021/9/22
N2 - The control in optical uniformity of single nanoparticles and tuning their diversity in multiple dimensions, dot to dot, holds the key to unlocking nanoscale applications. Here we report that the entire lifetime profile of the single upconversion nanoparticle (τ2 profile) can be resolved by confocal, wide-field, and super-resolution microscopy techniques. The advances in both spatial and temporal resolutions push the limit of optical multiplexing from microscale to nanoscale. We further demonstrate that the time-domain optical fingerprints can be created by utilizing nanophotonic upconversion schemes, including interfacial energy migration, concentration dependency, energy transfer, and isolation of surface quenchers. We exemplify that three multiple dimensions, including the excitation wavelength, emission color, and τ2 profile, can be built into the nanoscale derivative τ2-dots. Creating a vast library of individually preselectable nanotags opens up a new horizon for diverse applications, spanning from sub-diffraction-limit data storage to high-throughput single-molecule digital assays and super-resolution imaging.
AB - The control in optical uniformity of single nanoparticles and tuning their diversity in multiple dimensions, dot to dot, holds the key to unlocking nanoscale applications. Here we report that the entire lifetime profile of the single upconversion nanoparticle (τ2 profile) can be resolved by confocal, wide-field, and super-resolution microscopy techniques. The advances in both spatial and temporal resolutions push the limit of optical multiplexing from microscale to nanoscale. We further demonstrate that the time-domain optical fingerprints can be created by utilizing nanophotonic upconversion schemes, including interfacial energy migration, concentration dependency, energy transfer, and isolation of surface quenchers. We exemplify that three multiple dimensions, including the excitation wavelength, emission color, and τ2 profile, can be built into the nanoscale derivative τ2-dots. Creating a vast library of individually preselectable nanotags opens up a new horizon for diverse applications, spanning from sub-diffraction-limit data storage to high-throughput single-molecule digital assays and super-resolution imaging.
KW - lifetime profiles
KW - multiple dimensions
KW - optical fingerprints
KW - single upconversion nanoparticles
UR - https://www.scopus.com/pages/publications/85114368343
U2 - 10.1021/acs.nanolett.1c02404
DO - 10.1021/acs.nanolett.1c02404
M3 - 文章
C2 - 34406016
AN - SCOPUS:85114368343
SN - 1530-6984
VL - 21
SP - 7659
EP - 7668
JO - Nano Letters
JF - Nano Letters
IS - 18
ER -