Strain-induced lead-free morphotropic phase boundary
Abstract
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Details
- Title
- Strain-induced lead-free morphotropic phase boundary
- Creators
- Reza Ghanbari - North Carolina State UniversityHarikrishnan KP - Cornell UniversityKinnary Patel - University of Arkansas at FayettevilleHua Zhou - Argonne National LaboratoryTao Zhou - Argonne National LaboratoryRui Liu - Argonne National LaboratoryLiyan Wu - Drexel UniversityAarushi Khandelwal - Menlo SchoolKevin J. Crust - Menlo SchoolSankalpa Hazra - Pennsylvania State UniversityJohn Carroll - Drexel UniversityCedric J. G. Meyers - Drexel UniversityJiayue Wang - Menlo SchoolSergey Prosandeev - University of Arkansas at FayettevilleHuimin Qiao - North Carolina State UniversityYoung-Hoon Kim - Oak Ridge National LaboratoryYoji Nabei - North Carolina State UniversityMiaofang Chi - Oak Ridge National LaboratoryDali Sun - North Carolina State UniversityNina Balke - North Carolina State UniversityMartin Holt - Argonne National LaboratoryVenkatraman Gopalan - Pennsylvania State UniversityJonathan E. Spanier - Drexel UniversityDavid A. Muller - Cornell UniversityLaurent Bellaiche - University of Arkansas at FayettevilleHarold Y. Hwang - Menlo SchoolRuijuan Xu - North Carolina State University
- Publication Details
- Nature communications, v 16(1), 7766
- Publisher
- Nature Publishing Group
- Number of pages
- 11
- Grant note
- National Science Foundation (NSF): DMR-2442399 National Science Foundation (NSF): 68244-DNI10 American Chemical Society Petroleum Research Fund: 3.0 ARA Impact Grant: N00014-20-1-2834 Vannevar Bush Faculty Fellowship (VBFF): W911NF-21-2-0162 Department of DefenseArmy Research Office (ARO): DE-AC02-76SF00515 U.S. DOE, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering: DE-SC0012375 DOE-BES: DMR-2039380, RRID:SCR_023230 NSF: W911NF-24-2-0100 U.S. Army Research Laboratory: W911NF-21-1-0126 U.S. Army Research Office: FWP-ERKCS89 U.S. Department of Energy, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering: ECCS-2025064 National Science FoundationArkansas Economic Development CommissionCenter for Nanophase Materials Sciences (CNMS), a DOE Office of Science User Facility at ORNL: IIP-1841453, IIP-1841466 NSF, as part of the Center for Dielectrics and Piezoelectrics: DE-AC02-06CH11357 U.S. DOE, Office of Basic Energy SciencesState of North Carolina
R.G. and R.X. acknowledge the support from the National Science Foundation (NSF) under award No. DMR-2442399 and the American Chemical Society Petroleum Research Fund under award No. 68244-DNI10. K.P., S.P., and L.B. thank an ARA Impact Grant 3.0, the Vannevar Bush Faculty Fellowship (VBFF) Grant No. N00014-20-1-2834 from the Department of Defense. K.P., S.P., L.B., H.K., and D.A.M. acknowledge funding from the ETHOS MURI grant W911NF-21-2-0162 from the Army Research Office (ARO). A.K., K.J.C., and H.Y.H. acknowledge support by the U.S. DOE, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering under Contract No. DE-AC02-76SF00515. S.H. and V.G. acknowledge support from the DOE-BES under grant number DE-SC0012375 for optical second harmonic generation measurements. D.S. acknowledges support from the NSF under award number DMR-2143642 for sample fabrication. L.W., C.J.G.M., and J.E.S. acknowledge support from the U.S. Army Research Laboratory under Cooperative Agreement No. W911NF-24-2-0100, and J.E.S. acknowledges support also from the U.S. Army Research Office under grant W911NF-21-1-0126. M.C. acknowledges support from the U.S. Department of Energy, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering under contract FWP-ERKCS89. Y.K. is supported by BES-ECA ERKCZ55. The computational work was conducted fully or in part with the support of the Arkansas High Performance Computing Center which is funded through multiple National Science Foundation grants and the Arkansas Economic Development Commission. Part of the microscopy work was performed at the Center for Nanophase Materials Sciences (CNMS), a DOE Office of Science User Facility at ORNL. This work was supported by the NSF, as part of the Center for Dielectrics and Piezoelectrics under grant nos. IIP-1841453 and IIP-1841466. Work performed at the Center for Nanoscale Materials and Advanced Photon Source, both U.S. Department of Energy Office of Science User Facilities, was supported by the U.S. DOE, Office of Basic Energy Sciences, under Contract No. DE-AC02-06CH11357. The electron microscopy studies made use of the Cornell Center for Materials Research shared instrumentation facility instruments supported by the NSF (DMR-2039380). Part of this work was performed at the Stanford Nano Shared Facilities (SNSF) RRID:SCR_023230, supported by the National Science Foundation under award ECCS-2026822. This work was performed in part at the Analytical Instrumentation Facility (AIF) at North Carolina State University, which is supported by the State of North Carolina and the National Science Foundation (award number ECCS-2025064). The AIF is a member of the North Carolina Research Triangle Nanotechnology Network (RTNN), a site in the National Nanotechnology Coordinated Infrastructure (NNCI).
- Resource Type
- Journal article
- Language
- English
- Academic Unit
- Mechanical Engineering and Mechanics
- Web of Science ID
- WOS:001554898500028
- Scopus ID
- 2-s2.0-105013786428
- Other Identifier
- 991022083940304721
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- Collaboration types
- Domestic collaboration
- International collaboration
- Web of Science research areas
- Physics, Applied