Nanoscale Analysis of Frozen Water by Atom Probe Tomography Using Graphene Encapsulation and Cryo-Workflows

Author:

Exertier Florant1ORCID,Tegg Levi23ORCID,Taylor Adam1,Cairney Julie M23,Fu Jing4ORCID,Marceau Ross K W1ORCID

Affiliation:

1. Institute for Frontier Materials, Deakin University , Geelong, VIC 3216 , Australia

2. School of Aerospace, Mechanical and Mechatronic Engineering, The University of Sydney , Sydney, NSW 2006 , Australia

3. Australian Centre for Microscopy and Microanalysis, The University of Sydney , Sydney, NSW 2006 , Australia

4. Department of Mechanical and Aerospace Engineering, Monash University , Clayton, VIC 3800 , Australia

Abstract

Abstract There has been an increasing interest in atom probe tomography (APT) to characterize hydrated and biological materials. A major benefit of APT compared to microscopy techniques more commonly used in biology is its combination of outstanding three-dimensional (3D) spatial resolution and mass sensitivity. APT has already been successfully used to characterize biominerals, revealing key structural information at the atomic scale, however there are many challenges inherent to the analysis of soft hydrated materials. New preparation protocols, often involving specimen preparation and transfer at cryogenic temperature, enable APT analysis of hydrated materials and have the potential to enable 3D atomic scale characterization of biological materials in the near-native hydrated state. In this study, samples of pure water at the tips of tungsten needle specimens were prepared at room temperature by graphene encapsulation. A comparative study was conducted where specimens were transferred at either room temperature or cryo-temperature and analyzed by APT by varying the flight path and pulsing mode. The differences between the analysis workflows are presented along with recommendations for future studies, and the compatibility between graphene coating and cryogenic workflows is demonstrated.

Funder

Australian Research Council

Publisher

Oxford University Press (OUP)

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