Estimation of Temperature Homogeneity in MEMS‐Based Heating Nanochips via Quantitative HAADF‐STEM Tomography

Author:

Chen Qiongyang12,Skorikov Alexander123,van der Hoeven Jessi E. S.45,van Blaaderen Alfons4,Albrecht Wiebke12,Pérez‐Garza H. Hugo6,Bals Sara12ORCID

Affiliation:

1. EMAT University of Antwerp Groenenborgerlaan 171 Antwerp B‐2020 Belgium

2. NanoLab Center of Excellence University of Antwerp Groenenborgerlaan 171 Antwerp B‐2020 Belgium

3. Computational Imaging group Centrum Wiskunde and Informatica (CWI) Science Park 123 Amsterdam 1098 XG Netherlands

4. Soft Condensed Matter Debye Institute for Nanomaterials Science Utrecht University Princetonplein 5 Utrecht 3584 CC Netherlands

5. Materials Chemistry and Catalysis Debye Institute for Nanomaterials Science Utrecht University Universiteitsweg 99 Utrecht 3584 CG Netherlands

6. DENSsolutions B.V. Informaticalaan 12 Delft 2628 ZD Netherlands

Abstract

AbstractSample holders for transmission electron microscopy (TEM) based on micro‐electro‐mechanical systems (MEMS) have recently become popular for investigating the behavior of nanomaterials under in situ or environmental conditions. The accuracy and reproducibility of these in situ holders are essential to ensure the reliability of experimental results. In addition, the uniformity of an applied temperature trigger across the MEMS chip is a crucial parameter. In this work, it is measured the temperature homogeneity of MEMS‐based heating sample supports by locally analyzing the dynamics of heat‐induced alloying of Au@Ag nanoparticles located in different regions of the support through quantitative fast high‐angle annular dark‐field scanning TEM tomography. These results demonstrate the superior temperature homogeneity of a microheater design based on a heating element shaped as a circular spiral with a width decreasing outwards compared to a double spiral‐shaped designed microheater. The proposed approach to measure the local temperature homogeneity based on the thermal properties of bimetallic nanoparticles will support the future development of MEMS‐based heating supports with improved thermal properties and in situ studies where high precision in the temperature at a certain position is required.

Funder

European Commission

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science,General Chemistry

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