TY - JOUR
T1 - Photonic Crystal Grating Resonance and Interfaces for Health Diagnostic Technologies
AU - Bhaskar, Seemesh
AU - Wang, Weijing
AU - Lee, Hankeun
AU - Liu, Leyang
AU - Umrao, Saurabh
AU - Liu, Weinan
AU - Bacon, Amanda
AU - Tibbs, Joseph
AU - Khemtonglang, Kodchakorn
AU - Tan, Anqi
AU - Ayupova, Takhmina
AU - Chen, Wang Chien
AU - Wang, Xing
AU - Cunningham, Brian T.
N1 - The authors gratefully acknowledge funding from the National Institutes of Health (R33 CA27227, R01AI159454, R01CA227699, R01AI139401, R01EB029805, and RadXRad Program grant U01AA029348) and the National Science Foundation (NSF RAPID 20-27778, CBET 19-00277, CBET 22-32681). S.B. is supported by a postdoctoral fellowship from the Carl R. Woese Institute for Genomic Biology. H.K.L. acknowledges the support from the United States Department of Veterans Affairs (VA). J.T. is supported by the Illinois Distinguished Fellowship and the National Science Foundation graduate research fellowship. K.K. acknowledges support from the Fulbright Foreign Student Program by the U.S. Department of State and the Thailand-United States Educational Foundation. The authors thank the feedback provided by all the members of the Nanosensors group, HMNTL, during scientific discussions.
PY - 2025/7/23
Y1 - 2025/7/23
N2 - The photonic crystal grating resonance (PCGR) technologies mark a significant advancement in early diagnostics of infectious diseases. Here we review the historical perspectives of the PCGR-based platform starting from the early 1900s, discussing the fundamental principles, fabrication strategies, properties, and multifaceted applications. We delve into the significance of grating-based PC interfaces, from the perspective of plasmonics, photonics, and hybrid photoplasmonic interfaces. Hybrid substrates combining PCGR with plasmonic films, dielectric mirrors, and gratings extend the versatility of these platforms. The relevance of PCGR substrates in sensing various bioanalytes, from microRNA to proteins and lipids, is discussed using several case studies. Multifaceted applications such as photonic resonator absorption microscopy (PRAM), photonic resonator interferometric scattering microscopy (PRISM), and photonic crystal enhanced fluorescence (PCEF) showcase the transformative impact of PCGR substrates in the biosensing portfolio. An added advantage of accessibility and convenience of these technologies stemming from integrating smartphone-based detection is succinctly captured. A comparative analysis of PCGR-based biosensing highlighting their strengths and limitations, paving the way for future scope and opportunities, is discussed reviewing the literature in the past 25 years. In conclusion, this review provides a comprehensive overview of PCGR technologies, offering insights into their current state, challenges, and prospects for future advancements.
AB - The photonic crystal grating resonance (PCGR) technologies mark a significant advancement in early diagnostics of infectious diseases. Here we review the historical perspectives of the PCGR-based platform starting from the early 1900s, discussing the fundamental principles, fabrication strategies, properties, and multifaceted applications. We delve into the significance of grating-based PC interfaces, from the perspective of plasmonics, photonics, and hybrid photoplasmonic interfaces. Hybrid substrates combining PCGR with plasmonic films, dielectric mirrors, and gratings extend the versatility of these platforms. The relevance of PCGR substrates in sensing various bioanalytes, from microRNA to proteins and lipids, is discussed using several case studies. Multifaceted applications such as photonic resonator absorption microscopy (PRAM), photonic resonator interferometric scattering microscopy (PRISM), and photonic crystal enhanced fluorescence (PCEF) showcase the transformative impact of PCGR substrates in the biosensing portfolio. An added advantage of accessibility and convenience of these technologies stemming from integrating smartphone-based detection is succinctly captured. A comparative analysis of PCGR-based biosensing highlighting their strengths and limitations, paving the way for future scope and opportunities, is discussed reviewing the literature in the past 25 years. In conclusion, this review provides a comprehensive overview of PCGR technologies, offering insights into their current state, challenges, and prospects for future advancements.
UR - https://www.scopus.com/pages/publications/105010327725
UR - https://www.scopus.com/pages/publications/105010327725#tab=citedBy
U2 - 10.1021/acs.chemrev.4c00653
DO - 10.1021/acs.chemrev.4c00653
M3 - Review article
C2 - 40631781
AN - SCOPUS:105010327725
SN - 0009-2665
VL - 125
SP - 6435
EP - 6540
JO - Chemical reviews
JF - Chemical reviews
IS - 14
ER -