The analytical solution of the recently proposed ideal chain polymer mean-spherical approximation [Kalyuzhnyi, Mol. Phys. 94, 735 (1998)] is presented for the multicomponent mixture of charged hard-sphere linear chain flexible molecules. The solution applies to any mixture of chain molecules with arbitrary distribution of the charge and size of the beads along the molecular backbone. Closed form analytical expressions for the internal energy, Helmholtz free energy, chemical potentials, and pressure are derived. By way of illustration thermodynamical properties of several versions of the fluid of charged chain molecules of different length, including the molecules with uniform, diblock, and alternating distribution of the charge, are studied. Theoretical predictions are in reasonable agreement with available computer simulation predictions. We also present the liquid–gas phase diagrams for systems with diblock and alternating distribution of the charge.

1.
M.
Dymitrowska
and
L.
Belloni
,
J. Chem. Phys.
111
,
6633
(
1999
).
2.
K. S.
Schweizer
and
J. G.
Curro
,
Adv. Chem. Phys.
98
,
1
(
1997
).
3.
J. W.
Jiang
,
Y. L.
Liu
,
Y.
Hu
, and
J. M.
Prausnitz
,
J. Chem. Phys.
108
,
780
(
1998
).
4.
J.
Jiang
,
H.
Liu
, and
Y.
Hu
,
J. Chem. Phys.
110
,
4952
(
1999
).
5.
G.
Stell
and
Y.
Zhou
,
J. Chem. Phys.
91
,
3618
(
1989
);
Y.
Zhou
and
G.
Stell
,
J. Chem. Phys.
96
,
1504
(
1992
);
Y.
Zhou
and
G.
Stell
,
J. Chem. Phys.
96
,
1507
(
1992
);
Y.
Zhou
and
G.
Stell
,
J. Chem. Phys.
102
,
8089
(
1995
).
6.
Yu. V.
Kalyuzhnyi
and
G.
Stell
,
Chem. Phys. Lett.
240
,
157
(
1995
).
7.
L.
Blum
,
Yu. V.
Kalyuzhnyi
,
O.
Bernard
, and
J. N.
Herrera-Pacheco
,
J. Phys.: Condens. Matter
8
,
A143
(
1996
).
8.
I. A.
Protsykevytch
,
Yu. V.
Kalyuzhnyi
,
M. F.
Holovko
, and
L.
Blum
,
J. Mol. Liq.
73,74
,
1
(
1997
).
9.
Yu. V.
Kalyuzhnyi
,
Mol. Phys.
94
,
735
(
1998
).
10.
N.
von Solms
and
Y. C.
Chiew
,
J. Chem. Phys.
111
,
4839
(
1999
).
11.
M. S.
Wertheim
,
J. Stat. Phys.
42
,
459
(
1986
);
M. S.
Wertheim
,
J. Stat. Phys.
42
,
477
(
1986
).
12.
M. F.
Holovko
and
Yu. V.
Kalyuzhnyi
,
Mol. Phys.
73
,
1145
(
1991
).
13.
J.
Chang
and
S. I.
Sandler
,
J. Chem. Phys.
102
,
437
(
1995
).
14.
J.
Chang
and
S. I.
Sandler
,
J. Chem. Phys.
103
,
3196
(
1995
).
15.
Yu. V.
Kalyuzhnyi
and
P. T.
Cummings
,
J. Chem. Phys.
104
,
3325
(
1996
).
16.
P. J.
Rossky
and
R. A.
Chiles
,
Mol. Phys.
51
,
661
(
1984
).
17.
D.
Chandler
,
R.
Silbey
, and
Ladanyi
,
Mol. Phys.
46
,
1335
(
1982
).
18.
Yu. V.
Kalyuzhnyi
and
G.
Stell
,
Mol. Phys.
78
,
1247
(
1993
).
19.
G.
Stell
,
Physica A
231
,
1
(
1996
).
20.
Yu. V.
Kalyuzhnyi
and
P. T.
Cummings
,
J. Chem. Phys.
105
,
2011
(
1996
).
21.
Yu. V.
Kalyuzhnyi
,
C.-T.
Lin
, and
G.
Stell
,
J. Chem. Phys.
106
,
1940
(
1997
).
22.
Yu. V.
Kalyuzhnyi
,
C.-T.
Lin
, and
G.
Stell
,
J. Chem. Phys.
108
,
6513
(
1998
).
23.
Yu. V.
Kalyuzhnyi
,
C.-T.
Lin
, and
G.
Stell
,
J. Chem. Phys.
108
,
6525
(
1998
).
24.
G.
Stell
,
C.-T.
Lin
, and
Yu. V.
Kalyuzhnyi
,
J. Chem. Phys.
110
,
5444
(
1999
).
25.
G.
Stell
,
C.-T.
Lin
, and
Yu. V.
Kalyuzhnyi
,
J. Chem. Phys.
110
,
5458
(
1999
).
26.
C.-T.
Lin
,
G.
Stell
, and
Yu. V.
Kalyuzhnyi
,
J. Chem. Phys.
112
,
3071
(
2000
).
27.
J. S.
Ho/ye
and
G.
Stell
,
J. Chem. Phys.
67
,
439
(
1977
).
28.
M. J.
Stevens
and
K.
Kremer
,
J. Chem. Phys.
103
,
1669
(
1995
).
29.
O.
Bernard
and
L.
Blum
,
J. Chem. Phys.
112
,
7227
(
2000
).
30.
L.
Blum
,
Mol. Phys.
30
,
1529
(
1975
);
L.
Blum
and
J. S.
Ho/ye
,
J. Phys. Chem.
81
,
1311
(
1977
).
31.
V.
Vlachy
and
D.
Dolar
,
J. Chem. Phys.
76
,
2010
(
1982
).
32.
D.
Bratko
and
D.
Dolar
,
J. Chem. Phys.
80
,
5782
(
1984
).
33.
J. C.
Shelley
and
G. N.
Patey
,
J. Chem. Phys.
103
,
8299
(
1995
).
34.
A. Z.
Panagiotopoulos
,
Fluid Phase Equilibria
76
,
97
(
1992
).
35.
J.-M.
Caillol
and
J.-J.
Weiss
,
J. Chem. Phys.
102
,
7610
(
1995
).
36.
P. J.
Camp
and
G. N.
Patey
,
J. Chem. Phys.
111
,
9000
(
1999
).
37.
J.-M.
Caillol
,
J. Chem. Phys.
100
,
2161
(
1994
).
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