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Author |
Gershenzon, E. M.; Gol'tsman, G.; Ptitsina, N. G. |
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Title |
Energy spectrum of free excitons in germanium |
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Journal Article |
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Year |
1973 |
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JETP Lett. |
Abbreviated Journal |
JETP Lett. |
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Volume |
18 |
Issue |
3 |
Pages |
93 |
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Keywords |
Ge, free excitons, energy spectrum |
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1734 |
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Author |
Gershenzon, E. M.; Gol'tsman, G. N.; Mel'nikov, A. P. |
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Title |
Binding energy of a carrier with a neutral impurity atom in germanium and in silicon |
Type |
Journal Article |
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Year |
1971 |
Publication |
JETP Lett. |
Abbreviated Journal |
JETP Lett. |
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Volume |
14 |
Issue |
5 |
Pages |
185-186 |
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Keywords |
Ge, Si, neutral impurity atom, binding energy |
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1739 |
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Author |
Gershenzon, E. M.; Gol'tsman, G. N. |
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Title |
Transitions of electrons between excited states of donors in germanium |
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Journal Article |
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Year |
1971 |
Publication |
JETP Lett. |
Abbreviated Journal |
JETP Lett. |
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Volume |
14 |
Issue |
2 |
Pages |
63-65 |
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Keywords |
Ge, donors, excited states |
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1740 |
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Gershenzon, E. M.; Gol'tsman, G. N.; Emtsev, V. V.; Mashovets, T. V.; Ptitsyna, N. G.; Ryvkin, S. M. |
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Title |
Role of impurities of groups III and V in the formation of defects following γ irradiation of germanium |
Type |
Journal Article |
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Year |
1971 |
Publication |
JETP Lett. |
Abbreviated Journal |
JETP Lett. |
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Volume |
14 |
Issue |
6 |
Pages |
241 |
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Keywords |
Ge, gamma irradiation, defects, impurities |
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1742 |
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Author |
Mel’nikov, A. P.; Gurvich, Y. A.; Shestakov, L. N.; Gershenzon, E. M. |
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Title |
Magnetic field effects on the nonohmic impurity conduction of uncompensated crystalline silicon |
Type |
Journal Article |
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Year |
2001 |
Publication |
Jetp Lett. |
Abbreviated Journal |
Jetp Lett. |
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Volume |
73 |
Issue |
1 |
Pages |
44-47 |
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Keywords |
uncompensated crystalline silicon, nonohmic impurity conduction, magnetic field |
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Abstract |
The impurity conduction of a series of crystalline silicon samples with the concentration of major impurity N ≈ 3 × 1016 cm−3 and with a varied, but very small, compensation K was measured as a function of the electric field E in various magnetic fields H-σ(H, E). It was found that, at K < 10−3 and in moderate E, where these samples are characterized by a negative nonohmicity (dσ(0, E)/dE < 0), the ratio σ(H, E)/σ(0, E) > 1 (negative magnetoresistance). With increasing E, these inequalities are simultaneously reversed (positive nonohmicity and positive magnetoresistance). It is suggested that both negative and positive nonohmicities are due to electron transitions in electric fields from impurity ground states to states in the Mott-Hubbard gap. |
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0021-3640 |
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1752 |
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