Improved Charge Carrier Transport Across Grain Boundaries in N‐type PbSe by Dopant Segregation

Author:

Zhang Huaide1,Shen Minghao1,Stenz Christian1,Teichrib Christian1,Wu Riga1,Schäfer Lisa1,Lin Nan1,Zhou Yiming1,Zhou Chongjian2,Cojocaru‐Mirédin Oana3,Wuttig Matthias14,Yu Yuan1ORCID

Affiliation:

1. Institute of Physics (IA) RWTH Aachen University Sommerfeldstraße 14 52074 Aachen Germany

2. State Key Laboratory of Solidification Processing, and Key Laboratory of Radiation Detection Materials and Devices Ministry of Industry and Information Technology Northwestern Polytechnical University Xi'an 710072 China

3. Department of Sustainable Systems Engineering (INATECH) Albert‐Ludwigs‐Universität Freiburg 79110 Freiburg Germany

4. Peter Grünberg Institute (PGI 10) Forschungszentrum Jülich 52428 Jülich Germany

Abstract

Doping is an important and routine method to tune the properties of semiconductors. Dopants accumulated at grain boundaries (GBs) can exert a profound influence on microstructures and transport properties of heat and charge. To unravel the effect of dopant accumulation at GBs on the scattering of electrons, individual high‐angle GBs in three PbSe samples doped with different amounts of Cu using a home‐designed correlative characterization platform combining electron backscatter diffraction, microcircuit transport property measurements, and atom probe tomography are studied. The findings reveal that the segregation of Cu dopants to GBs reduces the GB potential barrier height. Once the GB phase reaches an equilibrium with saturated Cu, the extra Cu dopants distribute homogeneously inside the grains, compensating for vacancies and improving the electrical conductivity of the PbSe grains. The results correlate the Cu distribution at GBs and grains with local electrical properties, enlightening strategies for manipulating advanced functional materials by GB segregation engineering.

Funder

Deutsche Forschungsgemeinschaft

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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