TY - JOUR
T1 - Demonstration of a hyperlens-integrated microscope and super-resolution imaging
AU - Lee, Dasol
AU - Kim, Minkyung
AU - So, Sunae
AU - Kim, Inki
AU - Yoon, Gwanho
AU - Kim, Kyunghoon
AU - Rho, Junsuk
N1 - Publisher Copyright:
© 2017 Journal of Visualized Experiments.
PY - 2017/9/8
Y1 - 2017/9/8
N2 - The use of super-resolution imaging to overcome the diffraction limit of conventional microscopy has attracted the interest of researchers in biology and nanotechnology. Although near-field scanning microscopy and superlenses have improved the resolution in the near-field region, far-field imaging in real-time remains a significant challenge. Recently, the hyperlens, which magnifies and converts evanescent waves into propagating waves, has emerged as a novel approach to far-field imaging. Here, we report the fabrication of a spherical hyperlens composed of alternating silver (Ag) and titanium oxide (TiO2) thin layers. Unlike a conventional cylindrical hyperlens, the spherical hyperlens allows for two-dimensional magnification. Thus, incorporation into conventional microscopy is straightforward. A new optical system integrated with the hyperlens is proposed, allowing for a sub-wavelength image to be obtained in the far-field region in real time. In this study, the fabrication and imaging setup methods are explained in detail. This work also describes the accessibility and possibility of the hyperlens, as well as practical applications of real-time imaging in living cells, which can lead to a revolution in biology and nanotechnology.
AB - The use of super-resolution imaging to overcome the diffraction limit of conventional microscopy has attracted the interest of researchers in biology and nanotechnology. Although near-field scanning microscopy and superlenses have improved the resolution in the near-field region, far-field imaging in real-time remains a significant challenge. Recently, the hyperlens, which magnifies and converts evanescent waves into propagating waves, has emerged as a novel approach to far-field imaging. Here, we report the fabrication of a spherical hyperlens composed of alternating silver (Ag) and titanium oxide (TiO2) thin layers. Unlike a conventional cylindrical hyperlens, the spherical hyperlens allows for two-dimensional magnification. Thus, incorporation into conventional microscopy is straightforward. A new optical system integrated with the hyperlens is proposed, allowing for a sub-wavelength image to be obtained in the far-field region in real time. In this study, the fabrication and imaging setup methods are explained in detail. This work also describes the accessibility and possibility of the hyperlens, as well as practical applications of real-time imaging in living cells, which can lead to a revolution in biology and nanotechnology.
KW - Diffraction limit
KW - Engineering
KW - Hyperbolic metamaterials
KW - Hyperlens
KW - Issue 127
KW - Nanofabrication
KW - Novel microscope
KW - Real-time imaging
KW - Super-resolution far-field imaging
UR - http://www.scopus.com/inward/record.url?scp=85029004580&partnerID=8YFLogxK
U2 - 10.3791/55968
DO - 10.3791/55968
M3 - Article
C2 - 28930989
AN - SCOPUS:85029004580
SN - 1940-087X
VL - 2017
JO - Journal of Visualized Experiments
JF - Journal of Visualized Experiments
IS - 127
M1 - e55968
ER -