Deconstructing 3D Structured Materials by Modern Ultramicrotomy for Multimodal Imaging and Volume Analysis across Length Scales

Author:

Wacker Irene1ORCID,Curticean Ronald1,Ryklin Daniel1,Weidinger Britta2,Mayer Frederik3,Huang Li‐Yu4,Hoffmann Julian4,Islam Monsur5,von Coelln Nadine6,Schmitt Tanja6,Huck Christian6,Tegeder Petra6,Feist Florian3,Kammerer Jochen A.7,Barner‐Kowollik Christopher37,Wegener Martin3,Blasco Eva2,Gengenbach Ulrich4,Schröder Rasmus R.1

Affiliation:

1. 3DMM2O Cluster of Excellence and BioQuant Universität Heidelberg Im Neuenheimer Feld 267 69120 Heidelberg Germany

2. 3DMM2O Cluster of Excellence and IMSEAM Universität Heidelberg Im Neuenheimer Feld 225 69120 Heidelberg Germany

3. 3DMM2O Cluster of Excellence and Institute of Nanotechnology (INT) Karlsruhe Institute of Technology (KIT) 76344 Eggenstein‐Leopoldshafen Germany

4. Institute for Automation and Applied Informatics Karlsruhe Institute of Technology (KIT) 76344 Eggenstein‐Leopoldshafen Germany

5. 3DMM2O Cluster of Excellence and Institute of Microstructure Technology (IMT) Karlsruhe Institute of Technology (KIT) 76128 Karlsruhe Germany

6. 3DMM2O Cluster of Excellence and Physikalisch‐Chemisches Institut Universität Heidelberg Im Neuenheimer Feld 253 69120 Heidelberg Germany

7. School of Chemistry and Physics Centre for Materials Science Queensland University of Technology (QUT) 2 George Street Brisbane City QLD 4000 Australia

Abstract

AbstractBased on the rapid advances in additive manufacturing, micro‐patterned heterostructures of soft materials have become available that need to be characterized down to the nanoscale. Advanced function‐structure relationships are designed by direct 3D structuring of the object and – in the future – fine control over material functionality in 3D will produce complex functional objects. To control their design, fabrication and final structure, morphological and spectroscopical imaging in 3D at nanometer resolution are critically required. With examples of carbon‐based objects, it is demonstrated how serial ultramicrotomy, that is, cutting a large number of successive ultrathin sections, can be utilized to gain access to the interior of 3D objects. Array tomography, hierarchical imaging and correlative light and electron microscopy can bridge length scales over several orders of magnitude and provide multimodal information of the sample's inner structure. Morphology data derived from scanning electron microscopy are correlated with spectroscopy in analytical transmission electron microscopy and probe microscopy at nanometer resolution, using TEM‐electron energy loss spectroscopy and infrared‐scanning‐near‐field microscopy. The correlation of different imaging modalities and spectroscopy of carbon‐based materials in 3D provides a powerful toolbox of complementary techniques for understanding emerging functions from nanoscopic structuring.

Funder

Carl-Zeiss-Stiftung

Australian Research Council

Helmholtz Association

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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