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Items: 1 to 20 of 85

1.

Optical properties of the fiber-optic temperature sensor based on the side-hole fiber filled with indium.

Kim BH, Lee SH, Son DH, Ahn TJ, Kim SE, Han WT.

Appl Opt. 2013 Feb 1;52(4):666-73. doi: 10.1364/AO.52.000666.

PMID:
23385904
2.

Highly sensitive temperature sensor using a Sagnac loop interferometer based on a side-hole photonic crystal fiber filled with metal.

Reyes-Vera E, Cordeiro CM, Torres P.

Appl Opt. 2017 Jan 10;56(2):156-162. doi: 10.1364/AO.56.000156.

PMID:
28085845
3.

Effect of infiltration pressure on the birefringent properties of a side-hole fiber filled with indium.

Lee SH, Son DH, Kim BH, Han WT.

Opt Lett. 2012 Jun 15;37(12):2322-4. doi: 10.1364/OL.37.002322.

PMID:
22739895
4.

Large temperature sensitivity of Sagnac loop interferometer based on the birefringent holey fiber filled with metal indium.

Kim BH, Lee SH, Lin A, Lee CL, Lee J, Han WT.

Opt Express. 2009 Feb 2;17(3):1789-94.

PMID:
19189009
5.

All-fiber absolute temperature sensor using an unbalanced high-birefringence Sagnac loop.

De la Rosa E, Zenteno LA, Starodumov AN, Monzon D.

Opt Lett. 1997 Apr 1;22(7):481-3.

PMID:
18183241
6.

Temperature sensing using the bandgap-like effect in a selectively liquid-filled photonic crystal fiber.

Peng Y, Hou J, Zhang Y, Huang Z, Xiao R, Lu Q.

Opt Lett. 2013 Feb 1;38(3):263-5. doi: 10.1364/OL.38.000263.

PMID:
23381405
7.

Side-hole two-core microstructured optical fiber for hydrostatic pressure sensing.

Hu G, Chen D, Jiang X.

Appl Opt. 2012 Jul 10;51(20):4867-72. doi: 10.1364/AO.51.004867.

PMID:
22781266
8.

Phenomenon in an alcohol not full-filled temperature sensor based on an optical fiber Sagnac interferometer.

Zhao CL, Wang Z, Zhang S, Qi L, Zhong C, Zhang Z, Jin S, Guo J, Wei H.

Opt Lett. 2012 Nov 15;37(22):4789-91.

PMID:
23164914
9.

Superstructured fiber-optic contact force sensor with minimal cosensitivity to temperature and axial strain.

Dennison CR, Wild PM.

Appl Opt. 2012 Mar 20;51(9):1188-97. doi: 10.1364/AO.51.001188.

PMID:
22441461
10.

Surface plasmon resonance temperature sensor based on photonic crystal fibers randomly filled with silver nanowires.

Luan N, Wang R, Lv W, Lu Y, Yao J.

Sensors (Basel). 2014 Aug 29;14(9):16035-45. doi: 10.3390/s140916035.

11.

Side-hole fiber sensor based on surface plasmon resonance.

Wang A, Docherty A, Kuhlmey BT, Cox FM, Large MC.

Opt Lett. 2009 Dec 15;34(24):3890-2. doi: 10.1364/OL.34.003890.

PMID:
20016648
12.

Temperature characteristics of the birefringence properties of filled side-hole fibers.

Jason J, Rugeland P, Tarasenko O, Margulis W, Nilsson HE.

Appl Opt. 2013 Jul 20;52(21):5208-15. doi: 10.1364/AO.52.005208.

PMID:
23872768
13.
14.

Simulation of a localized surface-plasmon-resonance-based fiber optic temperature sensor.

Srivastava SK, Gupta BD.

J Opt Soc Am A Opt Image Sci Vis. 2010 Jul 1;27(7):1743-9. doi: 10.1364/JOSAA.27.001743.

PMID:
20596163
15.

Surface plasmon resonance based fiber optic sensor for the IR region using a conducting metal oxide film.

Verma RK, Gupta BD.

J Opt Soc Am A Opt Image Sci Vis. 2010 Apr 1;27(4):846-51. doi: 10.1364/JOSAA.27.000846.

PMID:
20360826
16.

Cylindrical sensor geometry for absorbance-based fiber-optic ammonia sensors.

Kar S, Arnold MA.

Talanta. 1994 Jun;41(6):1051-8.

PMID:
18966035
17.

Miniature Fabry-Perot pressure sensor created by using UV-molding process with an optical fiber based mold.

Bae H, Yu M.

Opt Express. 2012 Jun 18;20(13):14573-83. doi: 10.1364/OE.20.014573.

PMID:
22714519
18.

Load-insensitive temperature sensor based on azobenzene-chloroform-solution-filled microstructured optical fiber.

Yang C, Zhang H, Miao Y, Liang H, Zhao X, Wang Z, Liu B.

Opt Lett. 2013 Dec 15;38(24):5426-9. doi: 10.1364/OL.38.005426.

PMID:
24343008
19.
20.

Monitoring of railway embankment settlement with fiber-optic pulsed time-of-flight radar.

Kilpelä A, Lyöri V, Duan G.

Rev Sci Instrum. 2012 Dec;83(12):125004. doi: 10.1063/1.4772574.

PMID:
23278020

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