On the Feasibility of Extreme Heating Rates in SEM using MEMS Heater Platforms

Fuente: arXiv
Guardado en:
Detalles Bibliográficos
Autores principales: Koenig, C., Mayr, P., Jinschek, J. R., Fanta, A. Bastos
Formato: Preprint
Publicado: 2026
Materias:
Acceso en línea:
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
_version_ 1866908755102269440
author Koenig, C.
Mayr, P.
Jinschek, J. R.
Fanta, A. Bastos
author_facet Koenig, C.
Mayr, P.
Jinschek, J. R.
Fanta, A. Bastos
contents Understanding microstructural evolution under extreme thermal conditions is essential for advancing metal additive manufacturing (AM). This work demonstrates the feasibility of employing micro-electro-mechanical system (MEMS) heating platforms for in-situ scanning electron microscopy (SEM) characterization of bulk-like samples during rapid thermal cycling. Using electron backscatter diffraction (EBSD), we tracked the ferrite-to-austenite phase transformation in a pure iron specimen and confirmed that the sample surface temperature closely follows the MEMS temperature setpoint within device accuracy. Under vacuum conditions, stable heating and cooling rates of up to 1000 C/s were achieved with minimal power input and without compromising EBSD pattern quality. These findings establish MEMS-based heating as a robust approach for in-situ microstructural characterization of AM-relevant thermal processes in the SEM, enabling quantitative studies of thermally activated phenomena such as diffusion, phase transformations, and microstructural evolution under far-from-equilibrium conditions.
format Preprint
id arxiv_https___arxiv_org_abs_2601_05831
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle On the Feasibility of Extreme Heating Rates in SEM using MEMS Heater Platforms
Koenig, C.
Mayr, P.
Jinschek, J. R.
Fanta, A. Bastos
Materials Science
Understanding microstructural evolution under extreme thermal conditions is essential for advancing metal additive manufacturing (AM). This work demonstrates the feasibility of employing micro-electro-mechanical system (MEMS) heating platforms for in-situ scanning electron microscopy (SEM) characterization of bulk-like samples during rapid thermal cycling. Using electron backscatter diffraction (EBSD), we tracked the ferrite-to-austenite phase transformation in a pure iron specimen and confirmed that the sample surface temperature closely follows the MEMS temperature setpoint within device accuracy. Under vacuum conditions, stable heating and cooling rates of up to 1000 C/s were achieved with minimal power input and without compromising EBSD pattern quality. These findings establish MEMS-based heating as a robust approach for in-situ microstructural characterization of AM-relevant thermal processes in the SEM, enabling quantitative studies of thermally activated phenomena such as diffusion, phase transformations, and microstructural evolution under far-from-equilibrium conditions.
title On the Feasibility of Extreme Heating Rates in SEM using MEMS Heater Platforms
topic Materials Science
url https://arxiv.org/abs/2601.05831