MRS Meetings and Events

 

EN07.10.19 2024 MRS Spring Meeting

Bioengineering a Reversible Thermal Conductivity Switch in Tandem Repeat Proteins

When and Where

Apr 24, 2024
5:00pm - 7:00pm

Flex Hall C, Level 2, Summit

Presenter

Co-Author(s)

Emma Tiernan1,John Tomko1,Benjamin Allen2,Melik Demirel3,Patrick Hopkins1

University of Virginia1,Tandem Repeat Technologies, Inc2,The Pennsylvania State University3

Abstract

Emma Tiernan1,John Tomko1,Benjamin Allen2,Melik Demirel3,Patrick Hopkins1

University of Virginia1,Tandem Repeat Technologies, Inc2,The Pennsylvania State University3
The reversible regulation of heat transport within a material provides the user the ability to control its temperature as well as that of its surroundings. To achieve this nanoscale regulation, a material must be able to switch between thermally conductive and insulative states. In recent years it has been shown that thin films of certain tandem repeat proteins can achieve this thermal switch by simply hydrating and dehydrating the film. One material that is able to serve as a thermal switch is a synthetic bio-polymer whose sequence is inspired by those found in squid ring teeth (SRT). These SRT bio-polymers consist of repeating amorphous and crystalline domains which rely on hydrogen bonding and other intermolecular forces to retain their folded conformation. The addition and removal of water to these films will enhance or disrupt the intermolecular forces, thus encouraging or inhibiting the transport of heat. <br/><br/>In these experiments, we used time-domain thermoreflectance (TDTR) to monitor the thermal conductivity switch of SRT thin films under varying hydrating conditions. TDTR is an optical pump-probe technique for measuring thermal conductivity of microscale material systems, where a low power “probe” beam monitors the change in reflectivity of a metal transducer on the sample surface in response to a modulated heating “pump” laser. By applying an analytical solution to the heat conduction equation, we calculate thermal conductivity and other thermal properties of the material. We show that by modifying the composition of the hydrating solution, we are able to obtain a thermal conductivity switch ratio of four between ambient and hydrated states.

Keywords

thermal conductivity

Symposium Organizers

Woochul Kim, Yonsei University
Sheng Shen, Carnegie Mellon University
Sunmi Shin, National University of Singapore
Sebastian Volz, The University of Tokyo

Session Chairs

Sheng Shen
Sebastian Volz

In this Session

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EN07.10.02
Thermoelectric Properties of Monolayer HfI2, an Electride with Electrons on The Interstitial Sites

EN07.10.03
Near-Field Thermal Radiation across Solid-State Gaps

EN07.10.04
Inhibiting Crystallization Fouling Using Nano-Micro-Engineered Heat Transfer Surfaces

EN07.10.05
Thermal Characterization of Ultra-Thin Suspended Silicon Nitride Platforms

EN07.10.06
Super-Resolution Thermometry via Computational Correction to Overcome Diffraction Limit

EN07.10.07
Reversible Polymerization Chemistry for Compact Thermochemical Energy Storage Systems

EN07.10.08
A Personal Cooling Garment with Flexible Thermoelectric Devices and Heat Sinks

EN07.10.09
Identifying Molecular Scale Interactions of Nucleating Agents with Salt Hydrates for Thermal Energy Storage Applications

EN07.10.10
Prediction and Characterization of Barocaloric Effects in Plastic Crystals Using Molecular Dynamics

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