Self-Assembled Nanostructured Photonic-Plasmonic Metasurfaces for High-Resolution Optical Thermometry

被引:11
作者
Baraldi, Giorgio [1 ]
Garcia Pardo, Marina [1 ]
Gonzalo, Jose [1 ]
Serna, Rosalia [1 ]
Toudert, Johann [1 ]
机构
[1] CSIC, Inst Opt, Laser Proc Grp, E-28006 Madrid, Spain
关键词
metasurfaces; optical phase; plasmon; remote sensing; self-assembly; TEMPERATURE SENSOR; ENHANCED SENSITIVITY; PHASE; LIGHT; RESONANCE; METAMATERIALS; MODULATION;
D O I
10.1002/admi.201800241
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Sensing devices for environment, safety, healthcare, and optoelectronic applications require an accurate and noninvasive monitoring of their temperature, because its variations markedly affect the overall response of the device. Monitoring the optical response of temperature-sensitive integrated photonic elements, such as microresonators or microinterferometers, is an appealing solution in this context. However, achieving high-resolution optical thermometry with such elements is unpractical and costly as this requires lithography processing, highly monochromatic laser sources, complex light coupling strategies. Here, a photonic-plasmonic metasurface design that enables practical optical thermometry with a sub-10(-3) degrees C resolution is proposed. It is based on a self-assembled nanostructured material implemented with a lithography-free process. The optical response of the temperature-sensitive metasurface is probed using a white light source and by monitoring the optical phase in a standard reflectance configuration. This facile, yet powerful, sensing scheme stands on the effective response of the metasurface, which involves the hybridization of thin film interference and low-quality-factor plasmon resonances to enable a quasi-darkness response with a sharp spectral variation (jump) of the optical phase. Such jump is equivalent with a high-quality-factor resonator that yields a high sensor responsivity and thus enables high-resolution optical thermometry.
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页数:7
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共 53 条
[1]   Photonic-Plasmonic Mode Coupling in On-Chip Integrated Optoplasmonic Molecules [J].
Ahn, Wonmi ;
Boriskina, Svetlana V. ;
Hong, Yan ;
Reinhard, Bjoern M. .
ACS NANO, 2012, 6 (01) :951-960
[2]   3D plasmonic crystal metamaterials for ultra-sensitive biosensing [J].
Aristov, Andrey I. ;
Manousidaki, Maria ;
Danilov, Artem ;
Terzaki, Konstantina ;
Fotakis, Costas ;
Farsari, Maria ;
Kabashin, Andrei V. .
SCIENTIFIC REPORTS, 2016, 6
[3]   Preventing the Degradation of Ag Nanoparticles Using an Ultrathin a-Al2O3 Layer as Protective Barrier [J].
Baraldi, G. ;
Carrada, M. ;
Toudert, J. ;
Ferrer, F. J. ;
Arbouet, A. ;
Paillard, V. ;
Gonzalo, J. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2013, 117 (18) :9431-9439
[4]   Nanoassembled Plasmonic-Photonic Hybrid Cavity for Tailored Light-Matter Coupling [J].
Barth, Michael ;
Schietinger, Stefan ;
Fischer, Sabine ;
Becker, Jan ;
Nuesse, Nils ;
Aichele, Thomas ;
Loechel, Bernd ;
Soennichsen, Carsten ;
Benson, Oliver .
NANO LETTERS, 2010, 10 (03) :891-895
[5]   Surface plasmon resonance monitoring of temperature via phase measurement [J].
Chiang, HP ;
Yeh, HT ;
Chen, CM ;
Wu, JC ;
Su, SY ;
Chang, R ;
Wu, YJ ;
Tsai, DP ;
Jen, SU ;
Leung, PT .
OPTICS COMMUNICATIONS, 2004, 241 (4-6) :409-418
[6]   Controlling hybrid nonlinearities in transparent conducting oxides via two-colour excitation [J].
Clerici, M. ;
Kinsey, N. ;
DeVault, C. ;
Kim, J. ;
Carnemolla, E. G. ;
Caspani, L. ;
Shaltout, A. ;
Faccio, D. ;
Shalaev, V. ;
Boltasseva, A. ;
Ferrera, M. .
NATURE COMMUNICATIONS, 2017, 8 :15829
[7]   Label-Free Detection of Single Protein Using a Nanoplasmonic-Photonic Hybrid Microcavity [J].
Dantham, Venkata R. ;
Holler, Stephen ;
Barbre, Curtis ;
Keng, David ;
Kolchenko, Vasily ;
Arnold, Stephen .
NANO LETTERS, 2013, 13 (07) :3347-3351
[8]   Surface plasmon based thermo-optic and temperature sensor for microfluidic thermometry [J].
Davis, L. J., III ;
Deutsch, M. .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2010, 81 (11)
[9]   Fabrication of high-Q polydimethylsiloxane optical microspheres for thermal sensing [J].
Dong, C. -H. ;
He, L. ;
Xiao, Y. -F. ;
Gaddam, V. R. ;
Ozdemir, S. K. ;
Han, Z. -F. ;
Guo, G. -C. ;
Yang, L. .
APPLIED PHYSICS LETTERS, 2009, 94 (23)
[10]   Near-Infrared Spectrally Selective Plasmonic Electrochromic Thin Films [J].
Garcia, Guillermo ;
Buonsanti, Raffaella ;
Llordes, Anna ;
Runnerstrom, Evan L. ;
Bergerud, Amy ;
Milliron, Delia J. .
ADVANCED OPTICAL MATERIALS, 2013, 1 (03) :215-220