Published:12 July 2017https://doi.org/10.1098/rsos.170381
References
- 1Zheng C, Jiang X, Hua S, Chang L, Li G, Fan H, Xiao M. 2012 Controllable optical analog to electromagnetically induced transparency in coupled high-Q microtoroid cavities. Opt. Express 20, 18 319–18 325. (doi:10.1364/OE.20.018319) Crossref, Web of Science, Google Scholar
- 2Xu Q, Sandhu S, Povinelli ML, Shakya J, Fan S, Lipson M. 2006 Experimental realization of an on-chip all-optical analogue to electromagnetically induced transparency. Phys. Rev. Lett. 96, 123 901-1–123 901-4. Crossref, Web of Science, Google Scholar
- 3Naweed A, Farca G, Shopova SI, Rosenberger AT. 2005 Induced transparency and absorption in coupled whispering-gallery microresonators. Phys. Rev. A 71, 04 380-1–004 380-4. (doi:10.1103/PhysRevA.71.043804) Crossref, Web of Science, Google Scholar
- 4Fleischhauer M, Imamoglu A, Marangos JP. 2004 Electromagnetically induced transparency: optics in coherent media. Rev. Mod. Phys. 77, 633–673. (doi:10.1103/RevModPhys.77.633) Crossref, Web of Science, Google Scholar
- 5Lu Y, Huang X, Fu X, Wen W, Yao J. 2012 Interference effect in a dual microresonator-coupled Mach–Zehnder interferometer. Opt. Appl. 42, 25–29. Web of Science, Google Scholar
- 6Deng Q, Li X, Zhou Z, Yi H. 2014 Athermal scheme based on resonance splitting for silicon-on-insulator microring resonators. Photon Res. 2, 71. (doi:10.1364/PRJ.2.000071) Crossref, Web of Science, Google Scholar
- 7Claes T, Bogaerts W, Bienstman P. 2010 Experimental characterization of a silicon photonic biosensor consisting of two cascaded ring resonators based on the Vernier-effect and introduction of a curve fitting method for an improved detection limit. Opt. Express 18,22 747–22 761. (doi:10.1364/OE.18.022747) Crossref, Web of Science, Google Scholar
- 8Lydiate J. 2016 A novel method of biosensing using a temperature invariant microring resonator, PhD thesis. See https://www.escholar.manchester.ac.uk/item/?pid=uk-ac-man-scw:297355. Google Scholar
- 9Padmaraju K, Bergman K. 2013 Resolving the thermal challenges for silicon microring resonator devices. Nanophotonics 3, 1–13. Web of Science, Google Scholar
- 10Swenson CA. 1983 Recommended values of the thermal expansivity of silicon from 0 to 1000 K. J. Phys. Chem. Ref. Data 12, 179–182. (doi:10.1063/1.555681) Crossref, Web of Science, Google Scholar
- 11Li HH. 1980 Refractive index of silicon and germanium and its wavelength and temperature derivatives. J. Phys. Chem. Data 9, 561–658. (doi:10.1063/1.555624) Crossref, Web of Science, Google Scholar
- 12Creemer JF, Briand D, Zandbergen HW, van der vlist W, de Boer CR, de Rooij NF, Sarro PM. 2008 Microhotplates with TiN heaters. Sens. Actuators A 148, 416–421. (doi:10.1016/j.sna.2008.08.016) Crossref, Web of Science, Google Scholar
- 13Hilfiker JN, Singh B, Synowicki RA, Bungay CL. 2000 Optical characterization in the vacuum ultraviolet with variable angle spectroscopic ellipsometry: 157 nm and below. In Proc. SPIE 3998, Santa Clara, CA, 27 February, pp. 390–398. Bellingham, WA: SPIE. Google Scholar
- 14Hodgkinson J, Tatam RP. 2013 Optical gas sensing: a review. Meas. Sci. Technol. 24, 012004. (doi:10.1088/0957-0233/24/1/012004) Crossref, Web of Science, Google Scholar
- 15Yebo NA. 2008 An integrated optical sensor in silicon-on-insulator for detection of hydrogen gas. MSc thesis, Ghent University. See http://buck.ugent.be/fulltxt/RUG01/001/312/626/RUG01-00131262620100001AC.pdf. Google Scholar
- 16La Notte M , Troia B, Muciaccia T, Campanella CE, De Leonardis F, Passaro VMN. 2014 Recent advances in Gas and chemical detection by Vernier effect-based photonic sensors. Sensors 14, 4831–4855. (doi:10.3390/s140304831) Crossref, Web of Science, Google Scholar
- 17Robinson JT, Chen L, Lipson M. 2008 On-chip gas detection in silicon optical microcavities. In Conf. on Lasers and Electro-Optics/Quantum Electronics and Laser Science Conference and Photonic Applications Systems Technologies, OSA Technical Digest (CD) (Optical Society of America, 2008), paper CMJJ6. Crossref, Google Scholar
- 18Heilig A, Bârsan N, Weimar U, Schweizer-Berberich M, Gardner JW, Göpel W.1997 Gas identification by modulating temperatures of SnO2-based thick film sensors. Sens. Actuators B 4, 45–51. (doi:10.1016/S0925-4005(97)00096-8) Crossref, Web of Science, Google Scholar
- 19Lydiate J. 2017 Data from: Modelling and simulation of thermally-induced optical transparency in a dual-microring resonator. Dryad Digital Repository. (doi:10.5061/dryad.36n7v) Google Scholar