Araştırma Makalesi

A Comparative Analysis of Elastic, Mechanical, and Thermoelectric Properties in Mg2Y (Y =Si, Ge and Sn) Semiconducting Nanomaterials

Cilt: 12 Sayı: 3 30 Eylül 2025
PDF İndir
EN TR

A Comparative Analysis of Elastic, Mechanical, and Thermoelectric Properties in Mg2Y (Y =Si, Ge and Sn) Semiconducting Nanomaterials

Öz

The elastic, mechanical, thermodynamic, and ultrasonic properties of Mg2Y (Y=Si, Ge, and Sn) composite semiconducting nanomaterials were investigated by Lennard-Jones potential analysis, which evaluated elastic coefficients in second and third order, and as per our investigation and comparative evaluation from other research works, we can conclude that for the higher orders, the elastic constants in the initial parameter increase little, but for the successor, it will barely increase towards Sn from Si with Mg2. Further, the elastic constants have been used to examine the mechanical characteristics of hexagonal Mg2Y (Y=Si, Ge, and Sn) nanomaterial via its Poisson's ratio, Young’s modulus, bulk modulus, and other relative thermodynamic properties. Here the bulk modulus is presenting an increase in comparison to their bulk moduli. The nanomaterial composition is the same from Si, Ge, and Sn and from here the calculated G/B ratio of 0.976 indicates that Mg2Y (Y=Si, Ge, and Sn) is primarily composed of ionic bonds. When computing the thermal conductivity (kmin) at different compositions, the computation outcomes have been satisfactory. As composition changes from Si, Ge, and Sn, the thermal conductivity of compositions Mg2Y (Y=Si, Ge, and Sn) increases continuously with a steady state of hardness indication. This composition, which compounds Mg2Si, Mg2Ge, and Mg2Sn has also been tested for attenuation and composition dependent ultrasonic velocities and depicted in their relative responses. This composition is at its purest at initial attenuation, and its ductility is indicated by its lowest attenuation.

Anahtar Kelimeler

Kaynakça

  1. [1] V. K. Zaitsev, M.I. Fedorov, I. S. Eremin, and E. A. Gurieva, Thermoelectrics Handbook MacrotoNano, CRCPress, NewYork 2006.
  2. [2] J. Tani, and H. Kido, “Impurity doping into Mg2Sn: A first-principles study,” PhysicaB Condensed Matter, vol. 407, no. 17, pp. 3493-3498, 2012 https://doi.org/10.1016/j.physb.2012.05.008.
  3. [3] M. R. Kavuncu, M. Ekrem, and N. Yazıcı, “Mechanical Properties and Damage Behavior of MWCNT Reinforced Polyurethane Nanocomposites”, El-Cezeri Journal of Science and Engineering, vol. 9, no. 3, pp. 988–995, 2022, doi: 10.31202/ecjse.1018789.
  4. [4] Y. Noda, H. Kon, Y. Furukawa, N. Otsuka, I. A. Nishida, and K. Masumoto, “Temperature dependence of thermoelectric properties of Mg2Si0.6Ge0.4,” Mater. Trans. JIM, vol. 33, no. 9 pp. 851–855, 1992 https://doi.org/10.2320/matertrans1989.33.851
  5. [5] F. Yu, J. X. Sun, and T. H. Chen, “High-pressure phase transitions of Mg2Ge and Mg2Sn: first-principles calculations,” PhysicaB, vol 406, no. 9, pp. 1789–1794, 2011 https://doi.org/10.1016/j.physb.2011.02.029
  6. [6] R. Janot, F. Cuevas, M. Latroche, and A. P. Guegan, “Influence of crystallinity on the structural and hydrogenation properties of Mg2Xphases(X=Ni,Si,Ge,Sn),” Intermetallics, vol. 14, no. 2 pp. 163–169, 2006 https://doi.org/10.1016/j.intermet.2005.05.003
  7. [7] J. Prigent, and M. Gupta, “Abinitio study of the hydrogenation properties of Mg-based binary and ternary compounds Mg2X(X=Ni,Si)and YMgNi4,” J.Alloy.Compd., vol. 90, pp. 446–447, 2007 https://doi.org/10.1016/j.jallcom.2006.11.104
  8. [8] W. B. Whitten, P. L. Chung, and G.C. Danielson, “Elastic constants and lattice vibration frequencies of Mg2Si,” J.Phys.Chem.Solids, vol 26, no. 1 pp. 49–56, 1965 https://doi.org/10.1016/0022-3697(65)90071-5

Ayrıntılar

Birincil Dil

İngilizce

Konular

Mühendislik Uygulaması ve Eğitim (Diğer)

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

30 Eylül 2025

Gönderilme Tarihi

8 Mayıs 2025

Kabul Tarihi

19 Eylül 2025

Yayımlandığı Sayı

Yıl 2025 Cilt: 12 Sayı: 3

Kaynak Göster

APA
Yadav, A., Srivastav, P., & Yadawa, P. (2025). A Comparative Analysis of Elastic, Mechanical, and Thermoelectric Properties in Mg2Y (Y =Si, Ge and Sn) Semiconducting Nanomaterials. El-Cezeri, 12(3), 283-297. https://doi.org/10.31202/ecjse.1695273
AMA
1.Yadav A, Srivastav P, Yadawa P. A Comparative Analysis of Elastic, Mechanical, and Thermoelectric Properties in Mg2Y (Y =Si, Ge and Sn) Semiconducting Nanomaterials. ECJSE. 2025;12(3):283-297. doi:10.31202/ecjse.1695273
Chicago
Yadav, Adwitiya, Prashant Srivastav, ve Pramod Yadawa. 2025. “A Comparative Analysis of Elastic, Mechanical, and Thermoelectric Properties in Mg2Y (Y =Si, Ge and Sn) Semiconducting Nanomaterials”. El-Cezeri 12 (3): 283-97. https://doi.org/10.31202/ecjse.1695273.
EndNote
Yadav A, Srivastav P, Yadawa P (01 Eylül 2025) A Comparative Analysis of Elastic, Mechanical, and Thermoelectric Properties in Mg2Y (Y =Si, Ge and Sn) Semiconducting Nanomaterials. El-Cezeri 12 3 283–297.
IEEE
[1]A. Yadav, P. Srivastav, ve P. Yadawa, “A Comparative Analysis of Elastic, Mechanical, and Thermoelectric Properties in Mg2Y (Y =Si, Ge and Sn) Semiconducting Nanomaterials”, ECJSE, c. 12, sy 3, ss. 283–297, Eyl. 2025, doi: 10.31202/ecjse.1695273.
ISNAD
Yadav, Adwitiya - Srivastav, Prashant - Yadawa, Pramod. “A Comparative Analysis of Elastic, Mechanical, and Thermoelectric Properties in Mg2Y (Y =Si, Ge and Sn) Semiconducting Nanomaterials”. El-Cezeri 12/3 (01 Eylül 2025): 283-297. https://doi.org/10.31202/ecjse.1695273.
JAMA
1.Yadav A, Srivastav P, Yadawa P. A Comparative Analysis of Elastic, Mechanical, and Thermoelectric Properties in Mg2Y (Y =Si, Ge and Sn) Semiconducting Nanomaterials. ECJSE. 2025;12:283–297.
MLA
Yadav, Adwitiya, vd. “A Comparative Analysis of Elastic, Mechanical, and Thermoelectric Properties in Mg2Y (Y =Si, Ge and Sn) Semiconducting Nanomaterials”. El-Cezeri, c. 12, sy 3, Eylül 2025, ss. 283-97, doi:10.31202/ecjse.1695273.
Vancouver
1.Adwitiya Yadav, Prashant Srivastav, Pramod Yadawa. A Comparative Analysis of Elastic, Mechanical, and Thermoelectric Properties in Mg2Y (Y =Si, Ge and Sn) Semiconducting Nanomaterials. ECJSE. 01 Eylül 2025;12(3):283-97. doi:10.31202/ecjse.1695273