Multipass wide-field phase imager

Author:

Cuevas Álvaro1ORCID,Tiemann Daniel1ORCID,Camphausen Robin1ORCID,Cusini Iris12,Panzani Antonio2,Mukherjee Rajdeep13,Villa Federica2,Pruneri Valerio14

Affiliation:

1. The Barcelona Institute of Science and Technology

2. Politecnico di Milano

3. Karlsruhe Institute of Technology

4. Passeig Lluís Companys 23

Abstract

Advances in optical imaging always look for an increase in sensitivity and resolution among other practicability aspects. Within the same scope, in this work we report a versatile interference contrast imaging technique, with high phase sensitivity and a large field-of-view of several mm2. Sensitivity is increased through the use of a self-imaging non-resonant cavity, which causes photons to probe the sample in multiple rounds before being detected, where the configuration can be transmissive or reflective. Phase profiles can be resolved individually for each round thanks to a specially designed single-photon camera with time-of-flight capabilities and true pixels-off gating. Measurement noise is reduced by novel data processing combining the retrieved sample profiles from multiple rounds. Our protocol is especially useful under extremely low light conditions as required by biological or photo-sensitive samples. Results demonstrate more than a four-fold reduction in phase measurement noise, compared to single round imaging, and values close to the predicted sensitivity in case of the best possible cavity configuration, where all photons are maintained until n rounds. We also find good agreement with the theoretical predictions for low number of rounds, where experimental imperfections would play a minor role. The absence of a laser or cavity lock-in mechanism makes the technique an easy to use inspection tool.

Funder

Agència de Gestió d'Ajuts Universitaris i de Recerca

H2020 Marie Skłodowska-Curie Actions

H2020 Future and Emerging Technologies

Generalitat de Catalunya

Centres de Recerca de Catalunya

FUNDACIÓ Privada MIR-PUIG

Fundación Cellex

Agencia Estatal de Investigación

European Union Next Generation

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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