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Plasmonic Brownian Ratchets for Directed Transport of Analytes

Authors :
Carmo, Marciano Palma do
Mack, David
Roth, Diane J.
Zhao, Miao
Devis, Ancin M.
Rodríguez-Fortuño, Francisco J.
Maier, Stefan A.
Huidobro, Paloma A.
Rakovich, Aliaksandra
Publication Year :
2024

Abstract

Controlled long-range transport of micro- and nano-scale objects is a key requirement in lab-on-a-chip and microfluidic applications, enabling the efficient capture, concentration, manipulation, and detection of analytes. Traditional methods such as microfluidic pumps and optical trapping face challenges including high power consumption and limited range of action. This study introduces a plasmonic Brownian ratchet designed for the directed transport of dielectric nanometer-sized particles at low optical powers. Through numerical simulations, the ratchet geometry was optimized to enhance electric fields, optical forces, and trapping potentials. Experimentally, the plasmonic ratchet demonstrated the ability to rectify random thermal motion of 40 nm polysterene spheres over extended distances in a specific direction, achieving velocities up to 2.4 $\mu$m/s at excitation powers as low as 0.785 kW/cm^2. This plasmonic ratchet offers a robust and efficient solution for the targeted delivery and concentration of nanoscale analytes on chips, with significant implications for advancing applications in the life sciences.<br />Comment: to be submitted to ACS Nano

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2408.00515
Document Type :
Working Paper