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Microscopic mechanisms of deformation transfer in high dynamic range branched nanoparticle deformation sensors. | LitMetric

Microscopic mechanisms of deformation transfer in high dynamic range branched nanoparticle deformation sensors.

Nat Commun

Materials Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA, 94720, USA.

Published: March 2018

AI Article Synopsis

  • Nanoscale stress sensing is essential in biomechanics, requiring sensors with a broad dynamic range to measure varying local stresses across different materials.
  • Tetrapod quantum dots (tQDs) demonstrate remarkable versatility as stress sensors, providing consistent stress-correlated signals in various polymers and reflecting their ability to adapt to different stiffness levels.
  • By adjusting the polymer-tQD interface through ligand exchange, researchers maintain the inverse scaling response in the sensors, while analytical models confirm the mechanisms underlying strain transfer between the polymers and tQDs.

Article Abstract

Nanoscale stress sensing is of crucial importance to biomechanics and other fields. An ideal stress sensor would have a large dynamic range to function in a variety of materials spanning orders of magnitude of local stresses. Here we show that tetrapod quantum dots (tQDs) exhibit excellent sensing versatility with stress-correlated signatures in a multitude of polymers. We further show that tQDs exhibit pressure coefficients, which increase with decreasing polymer stiffness, and vary >3 orders of magnitude. This high dynamic range allows tQDs to sense in matrices spanning >4 orders of magnitude in Young's modulus, ranging from compliant biological levels (~100 kPa) to stiffer structural polymers (~5 GPa). We use ligand exchange to tune filler-matrix interfaces, revealing that inverse sensor response scaling is maintained upon significant changes to polymer-tQD interface chemistry. We quantify and explore mechanisms of polymer-tQD strain transfer. An analytical model based on Mori-Tanaka theory presents agreement with observed trends.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5861061PMC
http://dx.doi.org/10.1038/s41467-018-03396-5DOI Listing

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