Repository logo
  • English
  • 中文
Log In
Have you forgotten your password?
  1. Home
  2. College of Science / 理學院
  3. Physics / 物理學系
  4. Strain engineering of electronic structure, phonon, and thermoelectric properties of p-type half-Heusler semiconductor
 
  • Details

Strain engineering of electronic structure, phonon, and thermoelectric properties of p-type half-Heusler semiconductor

Journal
Journal of Alloys and Compounds
Journal Volume
850
Date Issued
2021
Author(s)
Shakeel Ahmad Khandy
JENG-DA CHAI  
DOI
10.1016/j.jallcom.2020.156615
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85090034160&doi=10.1016%2fj.jallcom.2020.156615&partnerID=40&md5=28f76c7012eef33f46a6c6d8a2eb11a1
https://scholars.lib.ntu.edu.tw/handle/123456789/573484
Abstract
We thoroughly inspected the strain induced electronic properties, phonon dynamics and thermoelectric performance of ZrRhSb compound via density functional theory calculations. The optimized lattice parameters are in accord with the experimental observations. The equilibrium lattice constant is utilized to predict the p-type semiconducting and indirect energy gap of 1.15 eV between the X and Γ symmetry points. The application of strain widens the band gap up to 1.5 eV at 10% of compressive strain keeping the indirect nature consistent. Phonon studies display positive frequencies up to 5% of expansion and 25% of compression and thus confirm the dynamic stability of ZrRhSb under strain. Machineability and elastic properties, evidenced from elastic constants and Pugh's parameter characterize it as a ductile alloy while maintaining its Debye temperature to 333 K. Herein, using ab initio quantum mechanical calculations and Boltzmann theory, optimization of thermoelectric performances in strained and robust ZrRhSb phase was performed. Starting from 300 K, it displays satisfactory thermoelectric performances, namely figure of merit ZTe > 0.65 and Seebeck coefficient >190 μV/K. Better performances via strain engineering were obtained at room temperature, where ZTe values reach 0.81 with a minimal fluctuation over broad temperature spectrum. The optimal strain conditions are achieved at 10% compression, where the S = 426 μV/K and figure of merit reaches up to a maximum of 0.91 at 800 K, which signifies the possible exploitation of ZrRhSb for thermoelectric applications. ? 2020 Elsevier B.V.
Subjects
Calculations; Density functional theory; Electronic properties; Electronic structure; Energy gap; Lattice constants; Phonons; Quantum theory; Compressive strain; Positive frequencies; Quantum-mechanical calculation; Strain engineering; Temperature spectra; Thermoelectric application; Thermoelectric performance; Thermoelectric properties; Thermoelectricity
Type
journal article

臺大位居世界頂尖大學之列,為永久珍藏及向國際展現本校豐碩的研究成果及學術能量,圖書館整合機構典藏(NTUR)與學術庫(AH)不同功能平台,成為臺大學術典藏NTU scholars。期能整合研究能量、促進交流合作、保存學術產出、推廣研究成果。

To permanently archive and promote researcher profiles and scholarly works, Library integrates the services of “NTU Repository” with “Academic Hub” to form NTU Scholars.

總館學科館員 (Main Library)
醫學圖書館學科館員 (Medical Library)
社會科學院辜振甫紀念圖書館學科館員 (Social Sciences Library)

開放取用是從使用者角度提升資訊取用性的社會運動,應用在學術研究上是透過將研究著作公開供使用者自由取閱,以促進學術傳播及因應期刊訂購費用逐年攀升。同時可加速研究發展、提升研究影響力,NTU Scholars即為本校的開放取用典藏(OA Archive)平台。(點選深入了解OA)

  • 請確認所上傳的全文是原創的內容,若該文件包含部分內容的版權非匯入者所有,或由第三方贊助與合作完成,請確認該版權所有者及第三方同意提供此授權。
    Please represent that the submission is your original work, and that you have the right to grant the rights to upload.
  • 若欲上傳已出版的全文電子檔,可使用Open policy finder網站查詢,以確認出版單位之版權政策。
    Please use Open policy finder to find a summary of permissions that are normally given as part of each publisher's copyright transfer agreement.
  • 網站簡介 (Quickstart Guide)
  • 使用手冊 (Instruction Manual)
  • 線上預約服務 (Booking Service)
  • 方案一:臺灣大學計算機中心帳號登入
    (With C&INC Email Account)
  • 方案二:ORCID帳號登入 (With ORCID)
  • 方案一:定期更新ORCID者,以ID匯入 (Search for identifier (ORCID))
  • 方案二:自行建檔 (Default mode Submission)
  • 方案三:學科館員協助匯入 (Email worklist to subject librarians)

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science