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Temperature stability of Bloch surface wave biosensors
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10.1063/1.3666031
/content/aip/journal/apl/99/23/10.1063/1.3666031
http://aip.metastore.ingenta.com/content/aip/journal/apl/99/23/10.1063/1.3666031

Figures

Image of FIG. 1.
FIG. 1.

(Color online) 1DPC measured reflectance at λ0 = 1475 nm (dots). The solid line is the numerical simulation obtained by means of a transfer matrix approach. (θ0, R0) is the working point used for the temperature shock experiments. In the inset, a sketch of the experimental configuration is shown.

Image of FIG. 2.
FIG. 2.

(Color online) Normalized reflectance RN as a function of the temperature measured by the thermocouple TTH recorded after injection of cold PBS. In the inset, a zoom of RN vs |ΔT| = |TTH − Tamb| is shown. The deviation from linearity is due to the temperature gradient inside the cell.

Image of FIG. 3.
FIG. 3.

(Color online) Numerical simulations of the RN vs |ΔT|. Results for BSW at λ = 1475 nm with thermo-optic effect in: (long dashed) PBS only, (short dashed) PBS and silicon alloys layers (SL), (solid black) PBS, SL and PAA (all materials). Result for an ideal BSW device with thermo-optic effect in all materials (dadot). Results for SPP at λ = 810 nm with thermo-optic effect in: (solid green) PBS only, (solid cyan) PBS, Au and PAA (all materials).

Tables

Generic image for table
Table I.

Complex thermo-optic coefficients used in the numerical simulations.

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/content/aip/journal/apl/99/23/10.1063/1.3666031
2011-12-07
2014-04-24
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752b84549af89a08dbdd7fdb8b9568b5 journal.articlezxybnytfddd
Scitation: Temperature stability of Bloch surface wave biosensors
http://aip.metastore.ingenta.com/content/aip/journal/apl/99/23/10.1063/1.3666031
10.1063/1.3666031
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