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Development of Whispering Gallery Mode Polymeric Micro-optical Electric Field Sensors
Published on: January 29, 2013
Mesoporous silica derivatives in random optical fields
Mohammad Hadi Sadri1, Ramin Jamali1, Asif Jamal Khan2
1Department of Physics, Institute for Advanced Studies in Basic Sciences (IASBS), Zanjan, Iran.
Abstract:
In this study, we demonstrate label-free optical differentiation and motion hindrance of pristine MCM-41 and surface-modified MCM-41GA using random optical fields, also known as speckle tweezers (STs), within a microfluidic environment. MCM-41 (SBET = 800 m2 g-1, pore diameter = 2.0 nm, ζ = -30 mV) and MCM-41GA (SBET = 450 m2 g-1, pore diameter = 1.8 nm, ζ = 4 mV) are synthesized and structurally characterized by XRD, NMR, SEM, TGA, elemental analysis, and N2 sorption. Quantitative trajectory analysis reveals that illumination with a random optical field suppresses particle motility in both materials. For MCM-41, the mean velocity decreases from 8.9 to 8.0 μms-1 (Welch's p value ≈ 2.2 × 10-2), while for MCM-41GA, the mean velocity decreases from 4.4 to 3.6 μms-1 (Welch's p value ≈ 8 × 10-3). Overall, ST induces a consistent reduction in the mean particle velocity and a marked increase in the immobility, enabling optically driven, physicochemical-dependent spatial segregation of mesoporous silica particles within microfluidic chips.

