The open issue of the n-type conductivity and its correlation to threading dislocations (TDs) in InN is addressed through first principles calculations on the electronic properties of a-edge TDs. All possible dislocation core models are considered (4-, 5/7-, and 8-atom cores) and are found to modify the band structure of InN in a distinct manner. In particular, nitrogen and indium low coordinated atoms in the eight-atom core induce states near the valence band maximum and above the conduction band minimum, respectively. The formation of a nitrogen–nitrogen “wrong” bond is observed at the 5/7-atom core resulting in a state inside the band gap. The 4- and 5/7-atom cores induce occupied states resonant in the conduction band due to In–In strain induced interactions and wrong bonds, respectively. These occupied states designate TDs as a source of higher electron concentrations in InN and provide direct evidence that TDs contribute to its inherent n-type conductivity.

1.
C. S.
Gallinat
,
G.
Koblmuller
,
J. S.
Brown
,
S.
Bernardis
,
J. S.
Speck
,
G. D.
Chern
,
E. D.
Readinger
,
H.
Shen
, and
M.
Wraback
,
Appl. Phys. Lett.
89
,
032109
(
2006
).
2.
P. D. C.
King
,
T. D.
Veal
,
P. H.
Jefferson
,
S. A.
Hatfield
,
L. F. J.
Piper
,
C. F.
McConville
,
F.
Fuchs
,
J.
Furthmuller
,
F.
Bechstedt
,
H.
Lu
, and
W. J.
Schaff
,
Phys. Rev. B
77
,
045316
(
2008
).
3.
S. X.
Li
,
K. M.
Yu
,
J.
Wu
,
R. E.
Jones
,
W.
Walukiewicz
,
J. W.
Ager
 III
,
W.
Shan
,
E. E.
Haller
,
H.
Lu
, and
W. E.
Schaff
,
Phys. Rev. B
71
,
161201
(
2005
).
4.
V.
Lebedev
,
V.
Cimalla
,
T.
Baumann
,
O.
Ambacher
,
F. M.
Morales
,
J. G.
Lozano
, and
D.
Gonzalev
,
J. Appl. Phys.
100
,
094903
(
2006
).
5.
X.
Wang
,
S. -B.
Che
,
Y.
Ishitani
, and
A.
Yoshikawa
,
Appl. Phys. Lett.
90
,
151901
(
2007
).
6.
Y.
Ishitani
,
M.
Fujiwara
,
X.
Wang
,
S. -B.
Che
, and
A.
Yoshikawa
,
Appl. Phys. Lett.
92
,
251901
(
2008
).
7.
D. C.
Look
,
H.
Lu
,
W. J.
Schaff
,
J.
Jasinski
, and
Z.
Liliental-Weber
,
Appl. Phys. Lett.
80
,
258
(
2002
).
8.
J. S.
Thakur
,
R.
Naik
,
V. M.
Naik
,
D.
Haddad
,
G. W.
Auner
,
H.
Lu
, and
W. J.
Schaff
,
J. Appl. Phys.
99
,
023504
(
2006
).
9.
C. S.
Gallinat
,
G.
Koblmuller
, and
J. S.
Speck
,
Appl. Phys. Lett.
95
,
022103
(
2009
).
10.
J.
Arvanitidis
,
D.
Christofilos
,
G. A.
Kourouklis
,
A.
Delimitis
,
M.
Katsikini
,
Ph.
Komninou
,
S.
Ves
,
E.
Dimakis
, and
A.
Georgakilas
,
J. Appl. Phys.
100
,
113516
(
2006
).
11.
A.
Béré
and
A.
Serra
,
Phys. Rev. B
65
,
205323
(
2002
).
12.
Y.
Xin
,
S. J.
Pennycook
,
N. D.
Browning
,
P. D.
Nellist
,
S.
Sivananthan
,
F.
Omnès
,
B.
Beaumont
,
J. P.
Faurie
, and
P.
Gibart
,
Appl. Phys. Lett.
72
,
2680
(
1998
).
13.
V.
Potin
,
P.
Ruterana
,
G.
Nouet
,
R. C.
Pond
, and
H.
Morkoc
,
Phys. Rev. B
61
,
5587
(
2000
).
14.
L.
Lymperakis
,
J.
Neugebauer
,
M.
Albrecht
,
T.
Remmele
, and
H. P.
Strunk
,
Phys. Rev. Lett.
93
,
196401
(
2004
).
15.
C. J.
Fall
,
R.
Jones
,
P. R.
Briddon
,
A. T.
Blumenau
,
T.
Frauenheim
, and
M. I.
Heggie
,
Phys. Rev. B
65
,
245304
(
2002
).
16.
J.
Kioseoglou
,
Ph.
Komninou
, and
Th.
Karakostas
,
Phys. Status Solidi A
206
,
1931
(
2009
).
17.
X.
Gonze
,
G. -M.
Rignanese
,
M. J.
Verstraete
,
J. -M.
Beuken
,
Y.
Pouillon
,
R.
Caracas
,
F.
Jollet
,
M.
Torrent
,
G.
Zerah
,
M.
Mikami
,
M.
Veithen
,
J. -Y.
Raty
,
V..
Olevano
,
F.
Bruneval
,
L.
Reining
,
R. W.
Godby
,
G.
Onida
,
D. R.
Hamann
, and
D. C.
Allan
,
Z. Kristallogr.
220
,
558
(
2005
).
18.
D.
Segev
,
A.
Janotti
, and
C. G.
Van de Walle
,
Phys. Rev. B
75
,
035201
(
2007
).
19.
H. P.
Lei
,
P.
Ruterana
,
G.
Nouet
,
X. Y.
Jiang
, and
J.
Chen
,
Appl. Phys. Lett.
90
,
111901
(
2007
).
20.
L. E.
Sutton
,
Table of Interatomic Distances and Configuration in Molecules and Ions
(
Chemical Society
,
London
,
1965
), Special Publication No.
18
, Supplement 1956–1959.
21.
D.
Segev
and
C. G.
Vand de Walle
,
Europhys. Lett.
76
,
305
(
2006
).
22.
C. G.
Van de Walle
and
D.
Segev
,
J. Appl. Phys.
101
,
081704
(
2007
).
23.
C. -L.
Wu
,
H. -M.
Lee
,
C. -T.
Kuo
,
C. -H.
Chen
, and
Sh.
Gwo
,
Phys. Rev. Lett.
101
,
106803
(
2008
).
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