EN
Invariant Magnetic Vector Potential in the Mercury Based High- Temperature Superconductor and Its Prospective Technological Application
Öz
Magnetic vector potential, A has great importance in various superconducting phenomena such as Aharonov-Bohm effect, Josephson effect, SQUID applications etc. due to the fact that A is directly related to the phase difference in the superconducting system. In this work, magnetic vector potential value has been calculated numerically for the optimally oxygen doped HgBa2Ca2Cu3O8+x mercury cuprate superconductor via interlayer theory at low temperatures by using magnetization versus applied magnetic field data. It has been surprisingly determined that regardless of the temperature variation; the quantity of magnetic vector potential remains unchanged. In this context, it has been determined that magnetic vector potential is an invariant parameter of the system investigated. Moreover, momentum conserving interlayer tunneling i.e. coupling between superconducting copper oxide layers for a low-temperature interval of 3K-5K has been proved for the first time. Hence, invariant magnetic vector potential corresponds to the concept of the constant phase difference. Ultimately, this work gives a reliable method for deciding about working temperature interval for technologists who want to design an intrinsic phase detector which has the property of constant phase difference
Anahtar Kelimeler
Kaynakça
- T.T. Wu and C.N. Yang, “Concept of nonintegrable phase factors and global formulation of gauge fields”, Phys. Rev. D, vol. 12, pp. 3845-3857, 1975.
- H. Lyre, “Aharonov—Bohm Effect”, in: Compendium of Quantum Physics, D. Greenberger, K. Hentschel, F. Weinert F. (Eds.), Springer, Berlin, Heidelberg 2009, pp. 1-3.
- Y.Aharonov and D. Bohm, “Significance of electromagnetic potentials in the quantum theory”, Phys. Rev., vol. 115 pp. 485-491, 1959.
- R. Doll and M. Nabauer, “Experimental proof of magnetic flux quantization in a superconducting ring”, Phys. Rev. Lett., vol.7, pp. 51-52, 1961.
- B.S. Deaver and W.M. Fairbank, “Experimental evidence for quantized flux in superconducting cylinders”, Phys. Rev. Lett., vol. 7, pp. 43-46, 1961.
- A.V. Khudchenko, V.P. Koshelets, P.N. Dmitriev, A.B. Ermakov, P.A. Yagoubov, and O.M. Pylypenko, “Cryogenic phase detector for the superconducting integrated receiver”, IEEE Trans. Appl. Supercond. vol. 17, pp. 605-608, 2007.
- P.V. Koshelets, S.V Shitov, A.B. Ermakov, L.V. Filippenko, O.V. Koryukin, A.V. Khudchenko, M.Y. Torgashin, P.A. Yagoubov, R.W.M. Hoogeveen, and O.M. Pylypenko, “Superconducting integrated receiver for TELIS”, IEEE. Trans. Appl. Supercond., vol. 15, pp. 960-963, 2005.
- V.P. Koshelets, S.V. Shitov, P.N. Dmitriev, A.B. Ermakov, L.V. Filippenko, V.V. Khodos, V.L. Vaks, A.M. Baryshev, P.R. Wesselius, superconducting integrated receiver: Prospects and limitations”, Physica C, vol. 367, pp. 249–255, 2002. a phase-locked
Ayrıntılar
Birincil Dil
İngilizce
Konular
-
Bölüm
-
Yazarlar
Yayımlanma Tarihi
1 Ocak 2018
Gönderilme Tarihi
1 Ocak 2018
Kabul Tarihi
-
Yayımlandığı Sayı
Yıl 2018 Cilt: 1 Sayı: 1
APA
Özdemir, Z. G. (2018). Invariant Magnetic Vector Potential in the Mercury Based High- Temperature Superconductor and Its Prospective Technological Application. International Journal of Engineering and Natural Sciences, 1(1), 1-6. https://izlik.org/JA58UU65BZ
AMA
1.Özdemir ZG. Invariant Magnetic Vector Potential in the Mercury Based High- Temperature Superconductor and Its Prospective Technological Application. IJENS. 2018;1(1):1-6. https://izlik.org/JA58UU65BZ
Chicago
Özdemir, Z Güven. 2018. “Invariant Magnetic Vector Potential in the Mercury Based High- Temperature Superconductor and Its Prospective Technological Application”. International Journal of Engineering and Natural Sciences 1 (1): 1-6. https://izlik.org/JA58UU65BZ.
EndNote
Özdemir ZG (01 Ocak 2018) Invariant Magnetic Vector Potential in the Mercury Based High- Temperature Superconductor and Its Prospective Technological Application. International Journal of Engineering and Natural Sciences 1 1 1–6.
IEEE
[1]Z. G. Özdemir, “Invariant Magnetic Vector Potential in the Mercury Based High- Temperature Superconductor and Its Prospective Technological Application”, IJENS, c. 1, sy 1, ss. 1–6, Oca. 2018, [çevrimiçi]. Erişim adresi: https://izlik.org/JA58UU65BZ
ISNAD
Özdemir, Z Güven. “Invariant Magnetic Vector Potential in the Mercury Based High- Temperature Superconductor and Its Prospective Technological Application”. International Journal of Engineering and Natural Sciences 1/1 (01 Ocak 2018): 1-6. https://izlik.org/JA58UU65BZ.
JAMA
1.Özdemir ZG. Invariant Magnetic Vector Potential in the Mercury Based High- Temperature Superconductor and Its Prospective Technological Application. IJENS. 2018;1:1–6.
MLA
Özdemir, Z Güven. “Invariant Magnetic Vector Potential in the Mercury Based High- Temperature Superconductor and Its Prospective Technological Application”. International Journal of Engineering and Natural Sciences, c. 1, sy 1, Ocak 2018, ss. 1-6, https://izlik.org/JA58UU65BZ.
Vancouver
1.Z Güven Özdemir. Invariant Magnetic Vector Potential in the Mercury Based High- Temperature Superconductor and Its Prospective Technological Application. IJENS [Internet]. 01 Ocak 2018;1(1):1-6. Erişim adresi: https://izlik.org/JA58UU65BZ