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Bismuth Telluride (Bi2Te3) Nanostructure for Thermoelectric Applications

Yıl 2019, Cilt: 3 Sayı: 1, 1 - 7, 30.06.2019

Öz



The bismuth telluride (Bi2Te3) nanostructure is the most commonly used in
thermoelectric (TE) applications. The different processes are utilized to
produce the
Bi2Te3
nanostructure. Herein, the used process is an efficient and cost effective
two-step co-precipitation chemical solution route. The process has been formed
by dissolving the bismuth (III) nitrate pentahydrate, Bi(NO3)3.5H2O and
tellurium dioxide, TeO2 into the same inorganic nitric acid, HNO3 with the
two-step co-precipitation of sodium hydroxide, NaOH and sodium borohydride,
HNaB4. The characterizing tools such as x-ray diffraction (XRD), ultraviolet
absorbance (UV), fourier transform infrared spectrometry (FTIR), scanning
electron microscopy (SEM), energy dispersive analysis of x-ray (EDAX), atomic
force microscopy (AFM), and transmission electron microscopy (TEM) were
employed to produce the
Bi2Te3 powders. According to these results, the obtained powders
have been confirmed as a nanostructure form of about low dimension that can be
easily used in TE applications.



Kaynakça

  • S. Chen, Y, Hutabalian, S. Lu, Y. Peng and Y. Lin. "Interfacial reactions in In/Bi2Se3, In/Bi2Te3 and In/Bi2(Se.02Te.08)3 couples." J. Alloys and Compounds 779 (2019) 347–359.
  • P. Khade, T. Bagwaiya, S. Bhattacharya, S. Rayaprol, A.K. Sahu and V. Shelke. "Transport properties of bismuth telluride compound prepared by mechanical alloying." AIP Conference Proceedings 1832 (2017) 110015.
  • C. Sudarshan, S. Jayakumar, K. Vaideki and C. Sudakar. "Effect of vacuum annealing on structural, electrical and thermal properties of e-beam evaporated Bi2Te3 thin films." Thin Solid Films 629 (2017) 28–38.
  • M.R. Burton, S.J. Richardson, P.A. Staniec, N.J. Terrill, J.M. Elliott, A.M. Squires, N.M. White and Iris S. Nandhakumar. "A novel route to nanostructured bismuth telluride films by electrodeposition." Electrochemistry Communications 76 (2017) 71–74.
  • D. Merten, K.T. Kallis, F.J. Giebel, J. Zimmermann, R.P. Poloczek, H.L. Fiedler and P. Lilienthal. "Lithography independent nanostructuring of Bi2Te3 thermoelectric devices." 14th IEEE India Council International Conference, IEEE (2017) 1–4.
  • Z. Chai, X. Hu, Y. Zhao, Y. Wu, S. Wang, H. Yang and Q. Gong. "Structural surface wave properties of amorphous Bi2Te3 by pulsed laser deposition in the visible and near-infrared regions." AIP Advances 8(6) (2018) 065324.
  • C. Lei, Karl S. Ryder, E. Koukharenko, M. Burton, and Iris S. Nandhakumar. "Electrochemical deposition of bismuth telluride thick layers onto nickel." Electrochemistry Communications 66 (2016) 1–4.
  • K. Ahn, J.K. Won, Y.K. Kang, C. Hwang, I. Chung and M.G. Kim. "Thermoelectric properties of nano-bulk bismuth telluride prepared with spark plasma sintered nano-plates." Current Applied Physics 19(2) (2019) 97–101.
  • H. Mamur, O. F. Dilmac, H. Korucu and M.R.A. Bhuiyan. "Cost-effective chemical solution synthesis of bismuth telluride nanostructure for thermoelectric applications." Micro & Nano Letters (2018).
  • M.M. Rashad, A. El-Dissouky, H.M. Soliman, A.M. Elseman, H.M. Refaat and A. Ebrahim. "Structure evaluation of bismuth telluride (Bi2Te3) nanoparticles with enhanced Seebeck coefficient and low thermal conductivity." Materials Research Innovations 22(6) (2018) 315–323.
  • F.H. Lin, and C.J. Liu. "A simple energy-saving aqueous synthesis of Bi2Te3 nanocomposites yielding relatively high thermoelectric power factors." Ceramics International in press (2018).
  • N.S. Abishek, and K.G. Naik, "Influence of gamma ray irradiation on stoichiometry of hydrothermally synthesized bismuth telluride nanoparticles." AIP Conference Proceedings 1953(1) (2018) 030067.
  • C. Kim, D.H. Kim, Y.S. Han, J.S. Chung, S. Park, H. Kim, "Fabrication of bismuth telluride nanoparticles using a chemical synthetic process and their thermoelectric evaluations." Powder technology 214(3) (2011) 463–468.
  • Y.Q. Cao, T.J. Zhu, X.B. Zhao, "Thermoelectric Bi2Te3 nanotubes synthesized by low temperature aqueous chemical method." J. Alloys and Comps. 449 (2008) 109–112.
  • Y. Liu, Q. Wang, J. Pan, Y. Sun, L. Zhang, and S. Song, "Hierarchical Bi2Te3 Nanostrings: Green Synthesis and Their Thermoelectric Properties." Chemistry–A European Journal, 24(39) (2018) 9765–9768.
  • S.L. Morelhao, C.I. Fornari, P.H. Rappl, and E. Abramof. "Nanoscale characterization of bismuth telluride epitaxial layers by advanced X-ray analysis." J. Applied Crystallography 50(2) (2017) 399–410.
  • T. Sharifi, S. Yazdi, G. Costin, A. Apte, G. Coulter, C. Tiwary and P.M. Ajayan. "Impurity-Controlled Crystal Growth in Low-Dimensional Bismuth Telluride." Chemistry of Materials 30(17) (2018) 6108–6115.
  • M. Mahvi, H. Delavari, and R. Poursalehi. "Rapid microwave-assisted synthesis of Bi2Te3 nanoflakes as an efficient contrast agent for X-ray computed tomography." Ceramics International 44(8) (2018) 9679–9683.
  • J. Yang, J. He and S. ZhangJanuary. "Bi2Te3 Nanorods: Preparation, Reaction Mechanism and Electrochemical Property." IOP Conference Series: Materials Science and Engineering 201(1) (2018) 012011.
  • A. Danine, K. Termentzidis, S. Schaefer, S. Li, W. Ensinger, C. Boulanger, D. Lacroix, and N. Stein, "Synthesis of bismuth telluride nanotubes and their simulated thermal properties." Superlattices and Microstructures 122 (2018) 587–595.
  • M.R.A. Bhuiyan and H. Mamur. "Review of the bismuth telluride (Bi2Te3) nanoparticle: growth and characterization" International J. Energy Applications and Technologies 3(2) (2016) 27–31.
  • H. Mamur, M.R.A. Bhuiyan, F. Korkmaz and M. Nil. "A review on bismuth telluride (Bi2Te3) nanostructure for thermoelectric applications." Renewable and Sustainable Energy Reviews 82(3) (2018) 4159-4169.
  • M.M. Rashad, A. El-Dissouky, H.M. Soliman, A.M. Elseman, H.M. Refaat, and A. Ebrahim. "Structure evaluation of bismuth telluride (Bi2Te3) nanoparticles with enhanced Seebeck coefficient and low thermal conductivity." Materials Research Innovations 22(6) (2018) 315–323.
  • G. Zhang, B. Kirk, L.A. Jauregui, H. Yang, X. Xu, Y.P. Chen and Y. Wu. "Rational synthesis of ultrathin n-type Bi2Te3 nanowires with enhanced thermoelectric properties." Nano letters 12(1) (2011) 56–60.
  • A.M. Elseman, A.E. Shalan, M.M. Rashad, A.M. Hassan, N.M. Ibrahim and A.M.Nassar. "Easily attainable new approach to mass yield ferrocenyl Schiff base and different metal complexes of ferrocenyl Schiff base through convenient ultrasonication‐solvothermal method." J. Phys. Organic Chem. 30(6) (2017) 1–10.
  • M.M. Rashad, A.M. Hassan, A.M. Nassar et al. "A new nano-structured Ni(II) Schiff base complex: synthesis, characterization, optical band gaps, and biological activity." Appl. Phys. A 117(2) (2014) 877–890.
  • J. Gooth, R. Zierold, P. Sergelius et al. "Local magnetic suppression of topological surface states in Bi2Te3 nanowires." ACS Nano. 10(7) (2016) 7180–7188.
  • P. Srivastava, K. Singh. "Effects of Cs-doping on morphological, optical and electrical properties of Bi2Te3 nanostructures." Mater. Lett. 136 (2014) 337–340.
  • J. Fu, S. Song, X. Zhang, F. Cao, L. Zhou, X. Li, H. Zhang. "Bi2Te3 nanoplates and nanoflowers: synthesized by hydrothermal process and their enhanced thermoelectric properties." Cryst. Engg. Comm. 14(6) (2012) 2159–2165.
  • S. Li, S. Zhang, Z. He, M. Toprak, C. Stiewe, M. Muhammed and E. Müller. "Novel solution route synthesis of low thermal conductivity nanostructure bismuth telluride." J. Nanoscience and Nanotech. 10(11) (2010) 7658–7662.
  • S.L. Benjamin, C.H. de Groot, C. Gurnani, A.L. Hector, R. Huang, E. Koukharenko, W. Levason and G. Reid. "Controlling the nanostructure of bismuth telluride by selective chemical vapour deposition from a single source precursor." J. Mater. Chem. A 2(14) (2014) 4865–4869.
  • H. Huang, W.L. Luan and S.T. Tu. "Influence of annealing on thermoelectric properties of bismuth telluride films grown via radio frequency magnetron sputtering." Thin Solid Films 517(13) (2009) 3731–3734.
  • M.R. Dirmyer, J. Martin, G.S. Nolas, A. Sen, J.V. Badding. "Thermal and electrical conductivity of size‐tuned bismuth telluride nanoparticles." Small 5(8) (2009) 933–937.

Bismuth Telluride (Bi2Te3) Nanostructure for Thermoelectric Applications

Yıl 2019, Cilt: 3 Sayı: 1, 1 - 7, 30.06.2019

Öz



The bismuth telluride (Bi2Te3) nanostructure is the most commonly used in
thermoelectric (TE) applications. The different processes are utilized to
produce the
Bi2Te3
nanostructure. Herein, the used process is an efficient and cost effective
two-step co-precipitation chemical solution route. The process has been formed
by dissolving the bismuth (III) nitrate pentahydrate, Bi(NO3)3.5H2O
and tellurium dioxide, TeO2 into the same inorganic nitric acid,
HNO3 with the two-step co-precipitation of sodium hydroxide, NaOH and sodium
borohydride, HNaB4. The characterizing tools such as x-ray diffraction (XRD),
ultraviolet absorbance (UV), fourier transform infrared spectrometry (FTIR),
scanning electron microscopy (SEM), energy dispersive analysis of x-ray (EDAX),
atomic force microscopy (AFM), and transmission electron microscopy (TEM) were
employed to produce the
Bi2Te3 powders. According to these results, the obtained powders
have been confirmed as a nanostructure form of about low dimension that can be
easily used in TE applications.



Kaynakça

  • S. Chen, Y, Hutabalian, S. Lu, Y. Peng and Y. Lin. "Interfacial reactions in In/Bi2Se3, In/Bi2Te3 and In/Bi2(Se.02Te.08)3 couples." J. Alloys and Compounds 779 (2019) 347–359.
  • P. Khade, T. Bagwaiya, S. Bhattacharya, S. Rayaprol, A.K. Sahu and V. Shelke. "Transport properties of bismuth telluride compound prepared by mechanical alloying." AIP Conference Proceedings 1832 (2017) 110015.
  • C. Sudarshan, S. Jayakumar, K. Vaideki and C. Sudakar. "Effect of vacuum annealing on structural, electrical and thermal properties of e-beam evaporated Bi2Te3 thin films." Thin Solid Films 629 (2017) 28–38.
  • M.R. Burton, S.J. Richardson, P.A. Staniec, N.J. Terrill, J.M. Elliott, A.M. Squires, N.M. White and Iris S. Nandhakumar. "A novel route to nanostructured bismuth telluride films by electrodeposition." Electrochemistry Communications 76 (2017) 71–74.
  • D. Merten, K.T. Kallis, F.J. Giebel, J. Zimmermann, R.P. Poloczek, H.L. Fiedler and P. Lilienthal. "Lithography independent nanostructuring of Bi2Te3 thermoelectric devices." 14th IEEE India Council International Conference, IEEE (2017) 1–4.
  • Z. Chai, X. Hu, Y. Zhao, Y. Wu, S. Wang, H. Yang and Q. Gong. "Structural surface wave properties of amorphous Bi2Te3 by pulsed laser deposition in the visible and near-infrared regions." AIP Advances 8(6) (2018) 065324.
  • C. Lei, Karl S. Ryder, E. Koukharenko, M. Burton, and Iris S. Nandhakumar. "Electrochemical deposition of bismuth telluride thick layers onto nickel." Electrochemistry Communications 66 (2016) 1–4.
  • K. Ahn, J.K. Won, Y.K. Kang, C. Hwang, I. Chung and M.G. Kim. "Thermoelectric properties of nano-bulk bismuth telluride prepared with spark plasma sintered nano-plates." Current Applied Physics 19(2) (2019) 97–101.
  • H. Mamur, O. F. Dilmac, H. Korucu and M.R.A. Bhuiyan. "Cost-effective chemical solution synthesis of bismuth telluride nanostructure for thermoelectric applications." Micro & Nano Letters (2018).
  • M.M. Rashad, A. El-Dissouky, H.M. Soliman, A.M. Elseman, H.M. Refaat and A. Ebrahim. "Structure evaluation of bismuth telluride (Bi2Te3) nanoparticles with enhanced Seebeck coefficient and low thermal conductivity." Materials Research Innovations 22(6) (2018) 315–323.
  • F.H. Lin, and C.J. Liu. "A simple energy-saving aqueous synthesis of Bi2Te3 nanocomposites yielding relatively high thermoelectric power factors." Ceramics International in press (2018).
  • N.S. Abishek, and K.G. Naik, "Influence of gamma ray irradiation on stoichiometry of hydrothermally synthesized bismuth telluride nanoparticles." AIP Conference Proceedings 1953(1) (2018) 030067.
  • C. Kim, D.H. Kim, Y.S. Han, J.S. Chung, S. Park, H. Kim, "Fabrication of bismuth telluride nanoparticles using a chemical synthetic process and their thermoelectric evaluations." Powder technology 214(3) (2011) 463–468.
  • Y.Q. Cao, T.J. Zhu, X.B. Zhao, "Thermoelectric Bi2Te3 nanotubes synthesized by low temperature aqueous chemical method." J. Alloys and Comps. 449 (2008) 109–112.
  • Y. Liu, Q. Wang, J. Pan, Y. Sun, L. Zhang, and S. Song, "Hierarchical Bi2Te3 Nanostrings: Green Synthesis and Their Thermoelectric Properties." Chemistry–A European Journal, 24(39) (2018) 9765–9768.
  • S.L. Morelhao, C.I. Fornari, P.H. Rappl, and E. Abramof. "Nanoscale characterization of bismuth telluride epitaxial layers by advanced X-ray analysis." J. Applied Crystallography 50(2) (2017) 399–410.
  • T. Sharifi, S. Yazdi, G. Costin, A. Apte, G. Coulter, C. Tiwary and P.M. Ajayan. "Impurity-Controlled Crystal Growth in Low-Dimensional Bismuth Telluride." Chemistry of Materials 30(17) (2018) 6108–6115.
  • M. Mahvi, H. Delavari, and R. Poursalehi. "Rapid microwave-assisted synthesis of Bi2Te3 nanoflakes as an efficient contrast agent for X-ray computed tomography." Ceramics International 44(8) (2018) 9679–9683.
  • J. Yang, J. He and S. ZhangJanuary. "Bi2Te3 Nanorods: Preparation, Reaction Mechanism and Electrochemical Property." IOP Conference Series: Materials Science and Engineering 201(1) (2018) 012011.
  • A. Danine, K. Termentzidis, S. Schaefer, S. Li, W. Ensinger, C. Boulanger, D. Lacroix, and N. Stein, "Synthesis of bismuth telluride nanotubes and their simulated thermal properties." Superlattices and Microstructures 122 (2018) 587–595.
  • M.R.A. Bhuiyan and H. Mamur. "Review of the bismuth telluride (Bi2Te3) nanoparticle: growth and characterization" International J. Energy Applications and Technologies 3(2) (2016) 27–31.
  • H. Mamur, M.R.A. Bhuiyan, F. Korkmaz and M. Nil. "A review on bismuth telluride (Bi2Te3) nanostructure for thermoelectric applications." Renewable and Sustainable Energy Reviews 82(3) (2018) 4159-4169.
  • M.M. Rashad, A. El-Dissouky, H.M. Soliman, A.M. Elseman, H.M. Refaat, and A. Ebrahim. "Structure evaluation of bismuth telluride (Bi2Te3) nanoparticles with enhanced Seebeck coefficient and low thermal conductivity." Materials Research Innovations 22(6) (2018) 315–323.
  • G. Zhang, B. Kirk, L.A. Jauregui, H. Yang, X. Xu, Y.P. Chen and Y. Wu. "Rational synthesis of ultrathin n-type Bi2Te3 nanowires with enhanced thermoelectric properties." Nano letters 12(1) (2011) 56–60.
  • A.M. Elseman, A.E. Shalan, M.M. Rashad, A.M. Hassan, N.M. Ibrahim and A.M.Nassar. "Easily attainable new approach to mass yield ferrocenyl Schiff base and different metal complexes of ferrocenyl Schiff base through convenient ultrasonication‐solvothermal method." J. Phys. Organic Chem. 30(6) (2017) 1–10.
  • M.M. Rashad, A.M. Hassan, A.M. Nassar et al. "A new nano-structured Ni(II) Schiff base complex: synthesis, characterization, optical band gaps, and biological activity." Appl. Phys. A 117(2) (2014) 877–890.
  • J. Gooth, R. Zierold, P. Sergelius et al. "Local magnetic suppression of topological surface states in Bi2Te3 nanowires." ACS Nano. 10(7) (2016) 7180–7188.
  • P. Srivastava, K. Singh. "Effects of Cs-doping on morphological, optical and electrical properties of Bi2Te3 nanostructures." Mater. Lett. 136 (2014) 337–340.
  • J. Fu, S. Song, X. Zhang, F. Cao, L. Zhou, X. Li, H. Zhang. "Bi2Te3 nanoplates and nanoflowers: synthesized by hydrothermal process and their enhanced thermoelectric properties." Cryst. Engg. Comm. 14(6) (2012) 2159–2165.
  • S. Li, S. Zhang, Z. He, M. Toprak, C. Stiewe, M. Muhammed and E. Müller. "Novel solution route synthesis of low thermal conductivity nanostructure bismuth telluride." J. Nanoscience and Nanotech. 10(11) (2010) 7658–7662.
  • S.L. Benjamin, C.H. de Groot, C. Gurnani, A.L. Hector, R. Huang, E. Koukharenko, W. Levason and G. Reid. "Controlling the nanostructure of bismuth telluride by selective chemical vapour deposition from a single source precursor." J. Mater. Chem. A 2(14) (2014) 4865–4869.
  • H. Huang, W.L. Luan and S.T. Tu. "Influence of annealing on thermoelectric properties of bismuth telluride films grown via radio frequency magnetron sputtering." Thin Solid Films 517(13) (2009) 3731–3734.
  • M.R. Dirmyer, J. Martin, G.S. Nolas, A. Sen, J.V. Badding. "Thermal and electrical conductivity of size‐tuned bismuth telluride nanoparticles." Small 5(8) (2009) 933–937.
Toplam 33 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Elektrik Mühendisliği
Bölüm Makaleler
Yazarlar

Hayati Mamur 0000-0001-7555-5826

Mohammad Ruhul Amin Bhuıyan 0000-0001-7335-4158

Yayımlanma Tarihi 30 Haziran 2019
Kabul Tarihi 5 Mart 2019
Yayımlandığı Sayı Yıl 2019 Cilt: 3 Sayı: 1

Kaynak Göster

APA Mamur, H., & Bhuıyan, M. R. A. (2019). Bismuth Telluride (Bi2Te3) Nanostructure for Thermoelectric Applications. International Scientific and Vocational Studies Journal, 3(1), 1-7.
AMA Mamur H, Bhuıyan MRA. Bismuth Telluride (Bi2Te3) Nanostructure for Thermoelectric Applications. ISVOS. Haziran 2019;3(1):1-7.
Chicago Mamur, Hayati, ve Mohammad Ruhul Amin Bhuıyan. “Bismuth Telluride (Bi2Te3) Nanostructure for Thermoelectric Applications”. International Scientific and Vocational Studies Journal 3, sy. 1 (Haziran 2019): 1-7.
EndNote Mamur H, Bhuıyan MRA (01 Haziran 2019) Bismuth Telluride (Bi2Te3) Nanostructure for Thermoelectric Applications. International Scientific and Vocational Studies Journal 3 1 1–7.
IEEE H. Mamur ve M. R. A. Bhuıyan, “Bismuth Telluride (Bi2Te3) Nanostructure for Thermoelectric Applications”, ISVOS, c. 3, sy. 1, ss. 1–7, 2019.
ISNAD Mamur, Hayati - Bhuıyan, Mohammad Ruhul Amin. “Bismuth Telluride (Bi2Te3) Nanostructure for Thermoelectric Applications”. International Scientific and Vocational Studies Journal 3/1 (Haziran 2019), 1-7.
JAMA Mamur H, Bhuıyan MRA. Bismuth Telluride (Bi2Te3) Nanostructure for Thermoelectric Applications. ISVOS. 2019;3:1–7.
MLA Mamur, Hayati ve Mohammad Ruhul Amin Bhuıyan. “Bismuth Telluride (Bi2Te3) Nanostructure for Thermoelectric Applications”. International Scientific and Vocational Studies Journal, c. 3, sy. 1, 2019, ss. 1-7.
Vancouver Mamur H, Bhuıyan MRA. Bismuth Telluride (Bi2Te3) Nanostructure for Thermoelectric Applications. ISVOS. 2019;3(1):1-7.


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