Development of an operando characterization stage for multi-modal synchrotron x-ray experiments

Author:

Walker Trumann1ORCID,Nietzold Tara1,Kumar Niranjana Mohan1,Lai Barry2,Stone Kevin3ORCID,Stuckelberger Michael E.4ORCID,Bertoni Mariana I.1ORCID

Affiliation:

1. Ira A. Fulton Schools of Engineering, Arizona State University, Tempe, Arizona 85282, USA

2. Advanced Photon Source, Argonne National Laboratory, Lemont, Illinois 60439, USA

3. Stanford Synchrotron Light Source, Stanford Linear Accelerator Laboratory, Menlo Park, California 94025, USA

4. Center for X-ray and Nano Science, Deutsches Elektronen-Synchrotron, 22607 Hamburg, Germany

Abstract

It is widely accepted that micro- and nanoscale inhomogeneities govern the performance of many thin-film solar cell absorbers. These inhomogeneities yield material properties (e.g., composition, structure, and charge collection) that are challenging to correlate across length scales and measurement modalities. The challenge is compounded if a correlation is sought during device operation or in conditions that mimic aging under particular stressors (e.g., heat and electrical bias). Correlative approaches, particularly those based on synchrotron x-ray sources, are powerful since they can access several material properties in different modes (e.g., fluorescence, diffraction, and absorption) with minimal sample preparation. Small-scale laboratory x-ray instruments have begun to offer multi-modality but are typically limited by low x-ray photon flux, low spatial resolution, or specific sample sizes. To overcome these limitations, a characterization stage was developed to enable multi-scale, multi-modal operando measurements of industrially relevant photovoltaic devices. The stage offers compatibility across synchrotron x-ray facilities, enabling correlation between nanoscale x-ray fluorescence microscopy, microscale x-ray diffraction microscopy, and x-ray beam induced current microscopy, among others. The stage can accommodate device sizes up to 25 × 25 mm2, offering access to multiple regions of interest and increasing the statistical significance of correlated properties. The stage materials can sustain humid and non-oxidizing atmospheres, and temperature ranges encountered by photovoltaic devices in operational environments (e.g., from 25 to 100 °C). As a case study, we discuss the functionality of the stage by studying Se-alloyed CdTe photovoltaic devices aged in the stage between 25 and 100 °C.

Funder

U.S. Department of Energy

Deutsches Elektronen-Synchrotron

Publisher

AIP Publishing

Subject

Instrumentation

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