TY - GEN
T1 - Tunable porous photonic bandgap structures for chemical and biological sensing
AU - Sung, Jin Kim
AU - Chodavarapu, Vamsy P.
AU - Kamal, Firdous
AU - Hsiao, Vincent K.S.
AU - Cartwright, Alexander N.
AU - Swihart, Mark T.
AU - Prasad, Paras N.
AU - Burning, Timothy J.
PY - 2006
Y1 - 2006
N2 - The development of porous nanostructured materials, such as polymer Bragg gratings, offer an attractive and unique platform for chemical and biological recognition elements. Much of the efforts in polymeric gratings have been focused on holographic polymer dispersed liquid crystal (H-PDLC) gratings with demonstrated applications in switching, lasing, and display devices. Here, we present the application of porous polymer photonic bandgap structures produced using a modified holographic method that includes a solvent as a phase separation fluid. The resulting gratings are simple to fabricate, stable, tunable, and highly versatile. Moreover, these acrylate porous polymer photonic bandgap structures were generated using a simple one-beam setup. In this paper, we describe the application of these nanoporous polymer gratings as a general template for biochemical recognition elements. As a prototype, we developed an oxygen (O 2) sensor by encapsulating the fluorophore (tris(4,7-diphenyl-1,10-phenathroline)ruthenium(II) within these nanostructured materials. Thus, the obtained O 2 sensors performed through the full-scale range (0%-100%) with a response time of less than 1 second. Most importantly, the use of the inherent property of these gratings to transmit or reflect a particular wavelength spectrum, based on the grating spacing, enables us to selectively enhance the detection efficiency for the wavelengths of interest.
AB - The development of porous nanostructured materials, such as polymer Bragg gratings, offer an attractive and unique platform for chemical and biological recognition elements. Much of the efforts in polymeric gratings have been focused on holographic polymer dispersed liquid crystal (H-PDLC) gratings with demonstrated applications in switching, lasing, and display devices. Here, we present the application of porous polymer photonic bandgap structures produced using a modified holographic method that includes a solvent as a phase separation fluid. The resulting gratings are simple to fabricate, stable, tunable, and highly versatile. Moreover, these acrylate porous polymer photonic bandgap structures were generated using a simple one-beam setup. In this paper, we describe the application of these nanoporous polymer gratings as a general template for biochemical recognition elements. As a prototype, we developed an oxygen (O 2) sensor by encapsulating the fluorophore (tris(4,7-diphenyl-1,10-phenathroline)ruthenium(II) within these nanostructured materials. Thus, the obtained O 2 sensors performed through the full-scale range (0%-100%) with a response time of less than 1 second. Most importantly, the use of the inherent property of these gratings to transmit or reflect a particular wavelength spectrum, based on the grating spacing, enables us to selectively enhance the detection efficiency for the wavelengths of interest.
KW - Biochemical sensors
KW - Biosensors
KW - Fluorometry
KW - HPDLC gratings
KW - Nanostructured sensors
KW - Optical sensors
KW - Oxygen sensors
KW - Porous structures
KW - Reflection gratings
UR - https://www.scopus.com/pages/publications/33751029308
U2 - 10.1117/12.681356
DO - 10.1117/12.681356
M3 - Conference contribution
AN - SCOPUS:33751029308
SN - 0819464015
SN - 9780819464019
T3 - Proceedings of SPIE - The International Society for Optical Engineering
BT - Tuning the Optic Response of Photonic Bandgap Structures III
T2 - Tuning the Optic Response of Photonic Bandgap Structures III
Y2 - 14 August 2006 through 14 August 2006
ER -