ICP Research Report 2020 English

Page 33

Research Report 2020

4.1

Institute of Computational Physics

Detecting Nanoparticles in Complex Environments

Nanoparticles are everywhere from Medtech products to cosmetics or food and therefore it is important to have tools to monitor them in situ. Current methods to detect and characterize nanoparticles are limited to specific environments (liquids for example) or required extensive and expensive sample preparation. For this reason, we are developing in collaboration with the Adolphe Merkle Institute of the University of Fribourg new thermography-based methods to detect stimuli-responsive nanoparticles in complex environments. Contributors: Partner(s): Funding: Duration:

Mathias Bonmarin Adolphe Merkle Institute of the University of Fribourg Multiple funding (Innosuisse, Foundations) 2012 – Ongoing

Nanoparticles are tiny particles which size range from 1 to 100 nm (to give an order of comparison the thickness of a sheet of paper is roughly 100’000 nm). Nanoparticles are nowadays used in many products like composite or medical devices but also in cosmetics or food. Regulation is increasing for the use of nanoparticle especially in Europe. Therefore, it is of a particular importance to have accurate tools to detect them. Several methods are available to detect and characterize nanoparticles, but they often demonstrate limitations in term of the medium in which the particles can be investigated or the preparation of the sample and associated costs. Many nanoparticles are stimuli-responsive meaning that they have the ability to produce heat when stimulated (by light or alternating magnetic field). The resulting infrared radiation his can easily be captured by a thermal camera. Using this principle, we developed together with the Adolphe Merkle Institute in Fribourg a new method to characterize nanoparticles in complex environments like cells culture, tissue or composite materials with very high accuracy. We developed several instruments for magnetic nanoparticles like SPIONs or plasmonic particles like gold. The technology has been protected (2 patents) and the startup company NanoLockin GmbH based in Fribourg is commercializing the research results.

Zurich University of Applied Sciences

We are convinced that thermography is a promising method to investigate stimuli-responsive nanoparticles and we are still investigating the potential of the technique for many applications in the field of nanoscience.

Fig. 7: Picture of the Calorsito VIS-NIR device developed by the company NanoLockin GmbH, a spin-off from the Adolphe Merkle Institute and the ZHAW Institute of Computational Physics.

References: [1] Journal of Physical Chemistry C, 124(2):1575-1584 (2020) [2] Particle & Particle Systems Characterization Journal, 36:1900224 (2019). [3] Journal of Physical Chemistry C, 121(48):27164-27175 (2017). [4] Journal of Magnetism and Magnetic Materials, 427:2062011 (2017). [5] Nanoscale Journal, 8(27):13321-13332 (2016). [6] www.nanolockin.com

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www.zhaw.ch


Articles inside

A.3 Book Chapters

2min
page 48

A.5 Teaching

4min
pages 51-53

A.4 Conferences and Workshops

4min
pages 49-50

5 Startup Culture at ICP

8min
pages 40-43

A.2 Scientific Publications

5min
pages 46-47

4.7 Room Temperature Sensors in the Digital Twin

2min
page 39

4.4 Viscosity Control Technologies for the Controlled Application of Coating Materials

2min
page 36

4.6 Climatic Ceiling Thermal Storage Allows Reduction in Façade Insulation

2min
page 38

4.5 Artificial Intelligence Heat Pump Controller

2min
page 37

4.2 Portable Device for Early Diagnosis of Lymphedema

2min
page 34

4.3 Design and Development of Artificial Skin Models for Tactile Sensing Applications

3min
page 35

4.1 Detecting Nanoparticles in Complex Environments

2min
page 33

3.6 Hardware Software Integration and Validation of a Compact THz System

2min
page 31

4 Sensor and Measuring Systems

1min
page 32

Experimental and Simulation Based Approach (CTDyn

2min
page 27

3.4 Investigation of the Efficiency and the Lifetime in OLEDs

2min
page 29

2.5 Quantifying the Impact of Convective Flow and Microstructure Inside Porous Electrodes on Electrochemical Performance of Flow Batteries

2min
page 24

3.5 All Organic Gap Free Terahertz Photonics

2min
page 30

3.3 Investigating Charge Transport in Organic Semiconductors with Electrochemical Methods and Modelling

2min
page 28

2.4 Modelling Capacity Fade in Organic Redox Flow Batteries: Thermodynamics of Transport in Concentrated Solutions

2min
page 23

1.10 Innovative Airborne Wind Power System

3min
page 16

1.11 Development of a Test Stand for Measuring of Thermal Conductivity

2min
page 17

2.3 3 D Model of Water and Heat Transport in PEMFCs During Evaporative Cooling and Humidification

2min
page 22

1.12 Model Based Characterization of the Movement of Hot Air Balloons

2min
page 18

2.2 DeMaPEM: Development and Marketing of Proton Exchange Membrane Fuel Cells for Transport Applications

2min
page 21

1.9 Test Rig for Welding Plastic Samples

1min
page 15

2 Electrochemical Cells and Microstructures

1min
page 19

1.8 Development of a New Generation of High Performance Air Heaters

2min
page 14

1.7 Model Based Optimization of CGO Ni Based SOFC Anodes

2min
page 13

1.3 Investigation of Modal Distortion on Torsional Resonators

2min
page 9

1.6 CFD Model of Exhaust Emission Pollutants in Tromsø Harbor

2min
page 12

1.2 Experimental Studies on the Copper Refining Process

2min
page 8

1 Multiphysics Modeling

1min
page 6

1.4 Simulation Based Calibration of Infusion Systems

1min
page 10

1.1 PM ASPV:Simulation Based Assessment of Magnetic Control of a Free Floating Magnet

2min
page 7
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