51
, 153-78.
Newman, M.E.J.: 2012, ‘Communities, modules and large-scale structure in net-
works’,
Nature Physics,
8
, 25-31.
Rouvray, D.H. & Bonchev, D.: 2003,
Mathematical chemistry. Volume VII, Complexity
in Chemistry
, London: Taylor and Francis, pp. 1-208.
Spann, M.L.; Chu, K.C.; Todd, W. & Ouchi, G.: 1978, ‘Use of computerized methods
to predict metabolic pathways and metabolites’,
Journal of Environmental Pa-
thology, Toxicology and Oncology
,
2
, 123-31.
Stadler, P.F.; Schnabl, W.; Forst, C.V. & Schuster, P.: 1995, ‘Dynamics of small auto-
catalytic reaction networks. II. Replication, mutation and catalysis’,
Bulletin of
Mathematical Biology
,
57
, 21-61.
Stadler, P.F.: 1996, ‘Landscapes and their correlation functions’,
Journal Mathematical
Chemistry
,
20
, 1-45.
Tratch, S.S.; Molchanova, M.S. & Tratch, N.S.: 2002, ‘The ARGENT program sys-
tem: A second-generation tool aimed at combinatorial search for new types of
oragnic reactions. 2. Mathematical models in ARGENT-1’, MATCH Com-
munications in Mathematical and in Computer Chemistry,
46
, 275-301.
Ugi, I. & Gillespie, P.D.: 1971, ‘Representation of chemical systems and interconver-
sions by
be
matrices and their transformation properties’,
Angewandte Chemie
International Edition
,
10
, 914-7.
Vespignani, A.: 2012, ‘Modelling dynamical processes in complex socio-technical
systems’,
Nature Physics
,
8
, 32-9.
Wipke, W.T. & Rogers, D.: 1984, ‘Artificial intelligence in organic synthesis. SST:
Starting material selection strategies. An application of superstructure search’,
Journal of Chemical Information and Computer Sciences
,
24
, 71-81.
Wipke, W.T. & Vladutz, G.: 1990, ‘An alternative view of reaction similarity: Citation
analysis’,
Tetrahedron Computer Methodology
,
3
, 83-107.
Zefirov, N.S.; Tratch, S.S. & Molchanova, M.S.: 2002, ‘The ARGENT program sys-
tem: A second-generation tool aimed at combinatorial search for new types of
oragnic reactions.1. Main concepts and potentialities’, MATCH Communica-
tions in Mathematical and in Computer Chemistry,
46
, 253-73.
17. Chemical nanotechnology
Aihara, J.I.; Yamabe, T. & Hosoya, H.: 1994, ‘Aromatic character of graphite and
carbon nanotubes’,
Synthetic Metals
,
64
, 309-13.
Mathematical Chemistry!
75
Amendola, V.; Fabbrizzi, L.; Mangano, C.; & Pallavicini, P.: 2001, ‘Molecular ma-
chines based on metal ion translocation’,
Accounts of Chemical Research
,
34
,
488-93.
Ballardini, R.; Balzani, V.; Credi, A.; Gandolfi, M.T. & Venturi, M.: 2001, ‘Artificial
molecular-level machines: Which energy to make them work?’,
Accounts of
Chemical Research
,
34
, 445-55.
Brinkmann, G.; Fowler, P.W.; Manolopoulos, D.E. & Palser, A.H.R.: 1999, ‘A census
of nanotube caps’,
Chemical Physics Letters,
315
, 335-47.
Bustamante, C.; Keller, D. & Oster, G.: 2001, ‘The physics of molecular motors’,
Accounts of Chemical Research
,
34
, 412-20.
Collin, J-P.; Dietrich-Buchecker, C.; Gaviña, P.; Jimenez-Molero, M.C. & Sauvage, J-
P.: 2001, ‘Shuttles and muscles: Linear molecular machines based on transition
metals’,
Accounts of Chemical Research
,
34
, 477-87.
Dietrich, C.O. & Sauvage, J.P.: 1987, ‘Interlocking of molecular threads: From the
statistical approach to the templated synthesis of catenands’,
Chemical Re-
views
,
87
, 795-810.
Dobrowlski, J.C.: 2002, ‘On the belt and Moebius isomers of the coronene molecule’,
Journal of Chemical Information and Computer Sciences
,
42
, 490-9.
Ernst, C. & Sumners, D.W.: 1990, ‘A calculus for rational tangles: Applications to
DNA recombination’,
Mathematical Proceedings of the Cambridge Philosophical
Society,
108
, 489-15.
Feringa, B.L.: 2001, ‘In control of motion: From molecular switches to molecular
motors’,
Accounts of Chemical Research
,
34
, 504-13.
Fisher, M.E. & Kolomeisky, A.B.:1999, ‘The force exerted by a molecular motor’,
Proceedings of the National Academy of Sciences of the United States of America
,
Do'stlaringiz bilan baham: |