TY - JOUR
T1 - Exploration of Stable Strontium Phosphide-Based Electrides
T2 - Theoretical Structure Prediction and Experimental Validation
AU - Wang, Junjie
AU - Hanzawa, Kota
AU - Hiramatsu, Hidenori
AU - Kim, Junghwan
AU - Umezawa, Naoto
AU - Iwanaka, Koki
AU - Tada, Tomofumi
AU - Hosono, Hideo
N1 - Funding Information:
This work was supported by the Ministry of Education, Culture, Sports, Science and Technology (MEXT) through the Element Strategy Initiative to Form Core Research Center. This work was supported in part by the ACCEL program sponsored by the Japan Science and Technology Agency. JK, TT, and HH were also supported by the Japan Society for the Promotion of Science (JSPS) through a Grant-in-Aid for Young Scientists Grant No. 17K14548 (JK) and a Grant-in-Aid for Scientific Research (S) No. 17H06153 (TT and HH). H. Hi was also supported by the JSPS through a Grant-in-Aid for Scientific Research on Innovative Areas “Nano Informatics” (Grant No. 25106007), a Grant-in-Aid for Scientific Research (A) (Grant No. 17H01318) from JSPS, and Support for Tokyotech Advanced Research (STAR). JW thanks Prof. Daniel Fredrickson of the University of Wisconsin−Madison, and Prof. Takeshi Inoshita and Prof. Yangfan Lu of Tokyo Institute of Technology for useful advice.
Publisher Copyright:
© 2017 American Chemical Society.
PY - 2017/11/8
Y1 - 2017/11/8
N2 - Inspired by the successful synthesis of alkaline-earth-metals-based electrides [Ca24Al28O64]4+(e-)4 (C12A7:e-) and [Ca2N]+:e- and high-throughput database screening results, we explore the potential for new electrides to emerge in the Sr-P system through a research approach combining ab initio evolutionary structure searches and experimental validation. Through employing an extensive evolutionary structure search and first-principles calculations, we first predict the new structures of a series of strontium phosphides: Sr5P3, Sr8P5, Sr3P2 and Sr4P3. Of these structures, we identify Sr5P3 and Sr8P5 as being potential electrides with quasi-one-dimensional (1D) and zero-dimensional (0D) character, respectively. Following these theoretical results, we present the successful synthesis of the new compound Sr5P3 and the experimental confirmation of its structure. Although density functional calculations with the generalized gradient approximation predict Sr5P3 to be a metal, electrical conductivity measurement reveal semiconducting properties characterized by a distinct band gap, which indicates that the newly synthesized Sr5P3 is an ideal one-dimensional electride with the half-filled band by unpaired electrons. In addition to presenting the novel electride Sr5P3, we discuss the implications of its semiconducting nature for 1D electrides in general and propose a mechanism for the formation of electrides with an orbital level diagram based on first-principles calculations.
AB - Inspired by the successful synthesis of alkaline-earth-metals-based electrides [Ca24Al28O64]4+(e-)4 (C12A7:e-) and [Ca2N]+:e- and high-throughput database screening results, we explore the potential for new electrides to emerge in the Sr-P system through a research approach combining ab initio evolutionary structure searches and experimental validation. Through employing an extensive evolutionary structure search and first-principles calculations, we first predict the new structures of a series of strontium phosphides: Sr5P3, Sr8P5, Sr3P2 and Sr4P3. Of these structures, we identify Sr5P3 and Sr8P5 as being potential electrides with quasi-one-dimensional (1D) and zero-dimensional (0D) character, respectively. Following these theoretical results, we present the successful synthesis of the new compound Sr5P3 and the experimental confirmation of its structure. Although density functional calculations with the generalized gradient approximation predict Sr5P3 to be a metal, electrical conductivity measurement reveal semiconducting properties characterized by a distinct band gap, which indicates that the newly synthesized Sr5P3 is an ideal one-dimensional electride with the half-filled band by unpaired electrons. In addition to presenting the novel electride Sr5P3, we discuss the implications of its semiconducting nature for 1D electrides in general and propose a mechanism for the formation of electrides with an orbital level diagram based on first-principles calculations.
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U2 - 10.1021/jacs.7b06279
DO - 10.1021/jacs.7b06279
M3 - Article
C2 - 29023114
AN - SCOPUS:85033241263
SN - 0002-7863
VL - 139
SP - 15668
EP - 15680
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 44
ER -