4.8 Article

Optimizing Brownian escape rates by potential shaping

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1910677116

Keywords

Kramers problem; diffusion; variational optimization; holographic tweezers

Funding

  1. Investissement d'Avenir LabEx PALM program [ANR-10-LABX-0039-PALM]
  2. European Union's Horizon 2020 research and innovation program under Innovative Training Network [674979-NANOTRANS]
  3. European Research Council [647144]

Ask authors/readers for more resources

Brownian escape is key to a wealth of physico-chemical processes, including polymer folding and information storage. The frequency of thermally activated energy barrier crossings is assumed to generally decrease exponentially with increasing barrier height. Here, we show experimentally that higher, fine-tuned barrier profiles result in significantly enhanced escape rates, in breach of the intuition relying on the above scaling law, and address in theory the corresponding conditions for maximum speed-up. Importantly, our barriers end on the same energy on which they start. For overdamped dynamics, the achievable boost of escape rates is, in principle, unbounded so that the barrier optimization has to be regularized. We derive optimal profiles under 2 different regularizations and uncover the efficiency of N-shaped barriers. We then demonstrate the viability of such a potential in automated microfluidic Brownian dynamics experiments using holographic optical tweezers and achieve a doubling of escape rates compared to unhindered Brownian motion. Finally, we show that this escape rate boost extends into the low-friction inertial regime.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.8
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available