Home / Publications / Organic and hybrid molecular systems

Organic and hybrid molecular systems

Elena Aleksandrovna Khokhlova 1
Elena Aleksandrovna Khokhlova
Mikhail Petrovich Egorov 1
Mikhail Petrovich Egorov
Alexey Mikhailovich Sakharov 1
Alexey Mikhailovich Sakharov
Sergei Grigorievich Zlotin 1
Sergei Grigorievich Zlotin
Alexei Viktorovich Kucherov 1
Alexei Viktorovich Kucherov
Marina Leonidovna Gening 1
Marina Leonidovna Gening
Nikolay Eduardovich Nifantiev 1
Nikolay Eduardovich Nifantiev
Published 2015-03-06
Focus articleVolume 25, Issue 2, 75-82
175
Share
Cite this
GOST
 | 
Cite this
GOST Copy
Ananikov V. P. et al. Organic and hybrid molecular systems // Mendeleev Communications. 2015. Vol. 25. No. 2. pp. 75-82.
GOST all authors (up to 50) Copy
Ananikov V. P., Khokhlova E. A., Egorov M. P., Sakharov A. M., Zlotin S. G., Kucherov A. V., Kustov L. M., Gening M. L., Nifantiev N. E. Organic and hybrid molecular systems // Mendeleev Communications. 2015. Vol. 25. No. 2. pp. 75-82.
RIS
 | 
Cite this
RIS Copy
TY - JOUR
DO - 10.1016/j.mencom.2015.03.001
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2015.03.001
TI - Organic and hybrid molecular systems
T2 - Mendeleev Communications
AU - Ananikov, Valentin Pavlovich
AU - Khokhlova, Elena Aleksandrovna
AU - Egorov, Mikhail Petrovich
AU - Sakharov, Alexey Mikhailovich
AU - Zlotin, Sergei Grigorievich
AU - Kucherov, Alexei Viktorovich
AU - Kustov, Leonid Modestovich
AU - Gening, Marina Leonidovna
AU - Nifantiev, Nikolay Eduardovich
PY - 2015
DA - 2015/03/06
PB - Mendeleev Communications
SP - 75-82
IS - 2
VL - 25
ER -
BibTex
 | 
Cite this
BibTex (up to 50 authors) Copy
@article{2015_Ananikov,
author = {Valentin Pavlovich Ananikov and Elena Aleksandrovna Khokhlova and Mikhail Petrovich Egorov and Alexey Mikhailovich Sakharov and Sergei Grigorievich Zlotin and Alexei Viktorovich Kucherov and Leonid Modestovich Kustov and Marina Leonidovna Gening and Nikolay Eduardovich Nifantiev},
title = {Organic and hybrid molecular systems},
journal = {Mendeleev Communications},
year = {2015},
volume = {25},
publisher = {Mendeleev Communications},
month = {Mar},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2015.03.001},
number = {2},
pages = {75--82},
doi = {10.1016/j.mencom.2015.03.001}
}
MLA
Cite this
MLA Copy
Ananikov, Valentin Pavlovich, et al. “Organic and hybrid molecular systems.” Mendeleev Communications, vol. 25, no. 2, Mar. 2015, pp. 75-82. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2015.03.001.
Views / Downloads
1 / 7

Abstract

The design of functional organic and hybrid molecular systems has shown outstanding recent growth and is a high priority in the development of new technologies and novel functional materials. Recent advancements in the chemical sciences have provided fascinating opportunities to access the most complex molecular architectures ever possible so far. Herein, we discuss the principles of the structural organization of recently studied molecular systems, basic approaches for their assembly, and challenging directions for their practical applications.

References

1.
Modern organic synthesis
Egorov M.P.
Russian Chemical Reviews, 2014
2.
Development of new methods in modern selective organic synthesis: preparation of functionalized molecules with atomic precision
Ananikov V.P., Khemchyan L.L., Ivanova Y.V., Bukhtiyarov V.I., Sorokin A.M., Prosvirin I.P., Vatsadze S.Z., Medved'ko A.V., Nuriev V.N., Dilman A.D., Levin V.V., Koptyug I.V., Kovtunov K.V., Zhivonitko V.V., Likholobov V.A., et. al.
Russian Chemical Reviews, 2014
6.
10.1016/j.mencom.2015.03.001_bib0025
Dambrova
Eur J. Pharmacol., 2008
8.
Behaviour of [11C]R(?)- and [11C]S(+)-rolipram in vitro and in vivo, and their use as PET radiotracers for the quantificative assay of PDE4
Parker C.A., Matthews J.C., Gunn R.N., Martarello L., Cunningham V.J., Dommett D., Knibb S.T., Bender D., Jakobsen S., Brown J., Gee A.D.
Synapse, 2005
9.
Progress in 1,2,3,4-Tetrazine Chemistry
Churakov A.M., Tartakovsky V.A.
Chemical Reviews, 2004
10.
Synthesis of 1,2,3,4-tetrazine 1,3-dioxides annulated with 1,2,3-triazoles and 1,2,3-triazole 1-oxides
Voronin A.A., Zelenov V.P., Churakov A.M., Strelenko Y.A., Fedyanin I.V., Tartakovsky V.A.
Tetrahedron, 2014
11.
Derivatives of Benzotetrazine-1,3-dioxide Are New NO-donors, Activators of Soluble Guanylate Cyclase, and Inhibitors of Platelet Aggregation
Pyatakova N.V., Khropov Y.V., Churakov A.M., Tarasova N.I., Serezhenkov V.A., Vanin A.F., Tartakovsky V.A., Severina I.S.
Biochemistry (Moscow), 2002
12.
N.V. Dolgova, A.M. Churakov, O. Yu. Smirnov, Yu.V. Khropov, N.G. Bogdanova, N.V. Mast, S.L. Ioffe, O.D. Lopina and V.A. Tartakovsky, RF Patent 2186108, 2002.
13.
N.V. Pyatakova, A.M. Kozlov, A.M. Churakov, O. Yu. Smirnov, Yu.V. Khropov, N.S. Saprykina, N.G. Bogdanova, S.L. Ioffe, I.S. Severina and V.A. Tartakovsky, RF Patent 2192857, 2002.
15.
Theoretical Investigation of Several 1,2,3,4-Tetrazine-Based High-Energy Compounds
Tan B., Huang M., Huang H., Long X., Li J., Nie F., Huang J.
Propellants, Explosives, Pyrotechnics, 2013
16.
Initial decomposition reaction of di-tetrazine-tetroxide (DTTO) from quantum molecular dynamics: implications for a promising energetic material
Ye C., An Q., Goddard III W.A., Cheng T., Liu W., Zybin S.V., Ju X.
Journal of Materials Chemistry A, 2015
18.
Esterase-sensitive nitric oxide donors of the diazeniumdiolate family: in vitro antileukemic activity.
Saavedra J.E., Shami P.J., Wang L.Y., Davies K.M., Booth M.N., Citro M.L., Keefer L.K.
Journal of Medicinal Chemistry, 1999
19.
More Lipophilic Dialkyldiamine-Based Diazeniumdiolates:  Synthesis, Characterization, and Application in Preparing Thromboresistant Nitric Oxide Release Polymeric Coatings
Batchelor M.M., Reoma S.L., Fleser P.S., Nuthakki V.K., Callahan R.E., Shanley C.J., Politis J.K., Elmore J., Merz S.I., Meyerhoff M.E.
Journal of Medicinal Chemistry, 2003
20.
Nitric Oxide-Releasing Fumed Silica Particles:  Synthesis, Characterization, and Biomedical Application
Zhang H., Annich G.M., Miskulin J., Stankiewicz K., Osterholzer K., Merz S.I., Bartlett R.H., Meyerhoff M.E.
Journal of the American Chemical Society, 2003
21.
New praziquantel derivatives containing NO-donor furoxans and related furazans as active agents against Schistosoma mansoni
Guglielmo S., Cortese D., Vottero F., Rolando B., Kommer V.P., Williams D.L., Fruttero R., Gasco A.
European Journal of Medicinal Chemistry, 2014
22.
Synthesis and Biological Evaluation of the First Example of NO-Donor Histone Deacetylase Inhibitor
Borretto E., Lazzarato L., Spallotta F., Cencioni C., D’Alessandra Y., Gaetano C., Fruttero R., Gasco A.
ACS Medicinal Chemistry Letters, 2013
23.
Advances in the chemistry of monocyclic amino- and nitrofuroxans
24.
Dinitrogen trioxide-mediated domino process for the regioselective construction of 4-nitrofuroxans from acrylic acids
Fershtat L.L., Struchkova M.I., Goloveshkin A.S., Bushmarinov I.S., Makhova N.N.
Heteroatom Chemistry, 2014
25.
Monocyclic and cascade rearrangements of furoxans
Makhova N.N., Ovchinnikov I.V., Kulikov A.S., Molotov S.I., Baryshnikova E.L.
Pure and Applied Chemistry, 2004
26.
The first synthesis of furoxan and 1,3,4-oxadiazole ring ensembles
Finogenov A.O., Kulikov A.S., Epishina M.A., Ovchinnikov I.V., Nelyubina Y.V., Makhova N.N.
Journal of Heterocyclic Chemistry, 2013
27.
4-Nitro-3-(5-tetrazole)furoxan and Its Salts: Synthesis, Characterization, and Energetic Properties
Liang L., Wang K., Bian C., Ling L., Zhou Z.
Chemistry - A European Journal, 2013
29.
Recent developments on the chemistry of aliphatic nitro compounds under aqueous medium
Ballini R., Barboni L., Fringuelli F., Palmieri A., Pizzo F., Vaccaro L.
Green Chemistry, 2007
30.
Asymmetric organocatalytic synthesis of γ-nitrocarbonyl compounds through Michael and Domino reactions
Roca-Lopez D., Sadaba D., Delso I., Herrera R.P., Tejero T., Merino P.
Tetrahedron Asymmetry, 2010
32.
Recent Advances in Organocatalytic Methods for Asymmetric CC Bond Formation
33.
C–C Coupling of Acyclic Nitronates with Silyl Ketene Acetals under Silyl Triflate Catalysis: Reactivity Umpolung of Aliphatic Nitro Compounds
34.
Six-Membered Cyclic Nitronates as 1,3-Dipoles in Formal [3 + 3]-Cycloaddition with Donor–Acceptor Cyclopropanes. Synthesis of New Type of Bicyclic Nitrosoacetals
Gorbacheva E.O., Tabolin A.A., Novikov R.A., Khomutova Y.A., Nelyubina Y.V., Tomilov Y.V., Ioffe S.L.
Organic Letters, 2013
36.
A General Metal-Assisted Synthesis of α-Halo Oxime Ethers from Nitronates and Nitro Compounds
Sukhorukov A.Y., Kapatsyna M.A., Yi T.L., Park H.R., Naumovich Y.A., Zhmurov P.A., Khomutova Y.A., Ioffe S.L., Tartakovsky V.A.
European Journal of Organic Chemistry, 2014
37.
Science of Synthesis: Asymmetric Organocatalysis, eds. B. List and K. Maruoka, Thieme, Stuttgart, 2012, vols. 1, 2.
40.
Enantioselective Michael Reaction of Malonates to Nitroolefins Catalyzed by Bifunctional Organocatalysts
Okino T., Hoashi Y., Takemoto Y.
Journal of the American Chemical Society, 2003
41.
Enantio- and Diastereoselective Michael Reaction of 1,3-Dicarbonyl Compounds to Nitroolefins Catalyzed by a Bifunctional Thiourea
Okino T., Hoashi Y., Furukawa T., Xu X., Takemoto Y.
Journal of the American Chemical Society, 2004
42.
Chiral Squaramide Derivatives are Excellent Hydrogen Bond Donor Catalysts
Malerich J.P., Hagihara K., Rawal V.H.
Journal of the American Chemical Society, 2008
43.
Ionic Liquid Organocatalysts
Siyutkin D.E., Kucherenko A.S., Zlotin S.G.
2013
47.
From carbohydrate leads to glycomimetic drugs
Ernst B., Magnani J.L.
Nature Reviews Drug Discovery, 2009
48.
Why Structurally Different Cyclic Peptides Can Be Glycomimetics of the HNK-1 Carbohydrate Antigen
Bhunia A., Vivekanandan S., Eckert T., Burg-Roderfeld M., Wechselberger R., Romanuka J., Bächle D., Kornilov A.V., von der Lieth C., Jiménez-Barbero J., Nifantiev N.E., Schachner M., Sewald N., Lütteke T., Siebert H., et. al.
Journal of the American Chemical Society, 2009
49.
Multivalency in heterogeneous glycoenvironments: hetero-glycoclusters, -glycopolymers and -glycoassemblies
Jiménez Blanco J.L., Ortiz Mellet C., García Fernández J.M.
Chemical Society Reviews, 2013
50.
Cyclo-oligo-(1 → 6)-β-d-glucosamine based artificial channels for tunable transmembrane ion transport
Saha T., Roy A., Gening M.L., Titov D.V., Gerbst A.G., Tsvetkov Y.E., Nifantiev N.E., Talukdar P.
Chemical Communications, 2014
51.
Synthetically defined glycoprotein vaccines: current status and future directions
Adamo R., Nilo A., Castagner B., Boutureira O., Berti F., Bernardes G.J.
Chemical Science, 2013
52.
Chemical Biology Approaches to Designing Defined Carbohydrate Vaccines
Anish C., Schumann B., Pereira C., Seeberger P.
Chemistry & Biology, 2014
53.
Antibody to a conserved antigenic target is protective against diverse prokaryotic and eukaryotic pathogens
Cywes-Bentley C., Skurnik D., Zaidi T., Roux D., DeOliveira R.B., Garrett W.S., Lu X., O’Malley J., Kinzel K., Zaidi T., Rey A., Perrin C., Fichorova R.N., Kayatani A.K., Maira-Litràn T., et. al.
Proceedings of the National Academy of Sciences of the United States of America, 2013
54.
A semisynthetic carbohydrate-lipid vaccine that protects against S. pneumoniae in mice
Cavallari M., Stallforth P., Kalinichenko A., Rathwell D.C., Gronewold T.M., Adibekian A., Mori L., Landmann R., Seeberger P.H., De Libero G.
Nature Chemical Biology, 2014
55.
Immune recognition of tumor-associated mucin MUC1 is achieved by a fully synthetic aberrantly glycosylated MUC1 tripartite vaccine
Lakshminarayanan V., Thompson P., Wolfert M.A., Buskas T., Bradley J.M., Pathangey L.B., Madsen C.S., Cohen P.A., Gendler S.J., Boons G.
Proceedings of the National Academy of Sciences of the United States of America, 2011
56.
A Fully Synthetic Four-Component Antitumor Vaccine Consisting of a Mucin Glycopeptide Antigen Combined with Three Different T-Helper-Cell Epitopes
Palitzsch B., Hartmann S., Stergiou N., Glaffig M., Schmitt E., Kunz H.
Angewandte Chemie - International Edition, 2014
57.
A Vision for Vaccines Built from Fully Synthetic Tumor-Associated Antigens: From the Laboratory to the Clinic
58.
Multivalent N-Acetylgalactosamine-Conjugated siRNA Localizes in Hepatocytes and Elicits Robust RNAi-Mediated Gene Silencing
Nair J.K., Willoughby J.L., Chan A., Charisse K., Alam M.R., Wang Q., Hoekstra M., Kandasamy P., Kel’in A.V., Milstein S., Taneja N., O’Shea J., Shaikh S., Zhang L., van der Sluis R.J., et. al.
Journal of the American Chemical Society, 2014
59.
Synthesis of Multivalent Carbohydrate-Centered Glycoclusters as Nanomolar Ligands of the Bacterial Lectin LecA from Pseudomonas aeruginosa
Gening M.L., Titov D.V., Cecioni S., Audfray A., Gerbst A.G., Tsvetkov Y.E., Krylov V.B., Imberty A., Nifantiev N.E., Vidal S.
Chemistry - A European Journal, 2013
60.
A New Bifunctional Chelator Enables Facile Biocoupling and Radiolabeling as the Basis for a Bioconjugation Kit
Barandov A., Grünstein D., Apostolova I., Buchert R., Roger M., Brenner W., Abram U., Seeberger P.H.
ChemBioChem, 2014
61.
Purification of a Low Molecular Weight Fucoidan for SPECT Molecular Imaging of Myocardial Infarction
Saboural P., Chaubet F., Rouzet F., Al-Shoukr F., Azzouna R., Bouchemal N., Picton L., Louedec L., Maire M., Rolland L., Potier G., Guludec D., Letourneur D., Chauvierre C.
Marine Drugs, 2014
62.
GlycoChip: multiarray for the study of carbohydrate-binding proteins
Galanina O.E., Mecklenburg M., Nifantiev N.E., Pazynina G.V., Bovin N.V.
Lab on a Chip, 2003
63.
Glycan Microarrays for Decoding the Glycome
Rillahan C.D., Paulson J.C.
Annual Review of Biochemistry, 2011
64.
Synthesis and Molecular Recognition Studies of the HNK-1 Trisaccharide and Related Oligosaccharides. The Specificity of Monoclonal Anti-HNK-1 Antibodies as Assessed by Surface Plasmon Resonance and STD NMR
Tsvetkov Y.E., Burg-Roderfeld M., Loers G., Ardá A., Sukhova E.V., Khatuntseva E.A., Grachev A.A., Chizhov A.O., Siebert H., Schachner M., Jiménez-Barbero J., Nifantiev N.E.
Journal of the American Chemical Society, 2011
65.
Glycan arrays as tools for infectious disease research
Geissner A., Anish C., Seeberger P.H.
Current Opinion in Chemical Biology, 2014
66.
Scintillation Proximity Assay for E-, P-, and L-Selectin Utilizing Polyacrylamide-Based Neoglycoconjugates as Ligands
Game S.M., Rajapurohit P.K., Clifford M., Bird M.I., Priest R., Bovin N.V., Nifant'ev N.E., O'Beirne G., Cook N.D.
Analytical Biochemistry, 1998
67.
Hopping-Mediated Anion Transport through a Mannitol-Based Rosette Ion Channel
Saha T., Dasari S., Tewari D., Prathap A., Sureshan K.M., Bera A.K., Mukherjee A., Talukdar P.
Journal of the American Chemical Society, 2014
68.
Biantennary oligoglycines and glyco-oligoglycines self-associating in aqueous medium
Tsygankova S.V., Chinarev A.A., Tuzikov A.B., Severin N., Kalachev A.A., Rabe J.P., Gambaryan A.S., Bovin N.V.
Beilstein Journal of Organic Chemistry, 2014
69.
Carbohydrate derivative ligands in asymmetric catalysis
Diéguez M., Pàmies O., Ruiz A., Dı́az Y., Castillón S., Claver C.
Coordination Chemistry Reviews, 2004
70.
Recent Progress in Asymmetric Catalysis Using Chiral Carbohydrate‐Based Ligands
Diéguez M., Claver C., Pàmies O.
European Journal of Organic Chemistry, 2007
71.
10.1016/j.mencom.2015.03.001_sbref0230a
Nanko
Advances in Technology of Materials and Materials Processing, 2009
72.
10.1016/j.mencom.2015.03.001_sbref0230b
Yamada
Concepts of Hybrid Materials Hybrid Materials – Concept and Case Studies, 1989
73.
10.1016/j.mencom.2015.03.001_sbref0230c
Makisima
Ceramics Japan, 2004
74.
Functional Hybrid Materials, eds. P. Gómez-Romero and C. Sanchez, Wiley-VCH, Weinheim, 2004;
75.
Materials Science Society of Japan, Molecular Hybridization and Hybrid Materials, Composite System in Materials, Shokabo Publishing Co., Tokyo, 1993, p. 336.
76.
Designing hybrid materials
Ashby M.F., Bréchet Y.J.
Acta Materialia, 2003
77.
M. Uemura, Hybrid Composites, eds. M. Uemura and H. Hukuda, CMC Publishing Co., Tokyo, 2002.
78.
10.1016/j.mencom.2015.03.001_sbref0235c
Suyama
Ceramics Japan,, 2004
79.
10.1016/j.mencom.2015.03.001_sbref0235d
Usuki
Expected Materials for the Future, 2001
80.
10.1016/j.mencom.2015.03.001_sbref0235e
Niizeki
Sensor Tech, 1986
81.
10.1016/j.mencom.2015.03.001_sbref0235f
Ichimura
Fundamental and Applications of Harmonized Molecular Materials, 2004
82.
10.1016/j.mencom.2015.03.001_sbref0235g
Gobin
J. Intell. Mater. Syst. Struct., 1996
83.
Intelligent Material Systems: Application of Functional Materials
Tani J., Takagi T., Qiu J.
Applied Mechanics Reviews, 1998
84.
Hybrid Materials. Synthesis, Characterization, and Applications, ed. G. Kickelbick, Wiley-VCH, Weinheim, 2007.
85.
New and Future Developments in Catalysis. Hybrid Materials, Composites, and Organocatalysts, ed. S.L. Suib, Elsevier, Amsterdam, 2013.
87.
Systematic Design of Pore Size and Functionality in Isoreticular MOFs and Their Application in Methane Storage
Eddaoudi M., Kim J., Rosi N., Vodak D., Wachter J., O'Keeffe M., Yaghi O.M.
Science, 2002
88.
A route to high surface area, porosity and inclusion of large molecules in crystals
Chae H.K., Siberio-Pérez D.Y., Kim J., Go Y., Eddaoudi M., Matzger A.J., O'Keeffe M., Yaghi O.M.
Nature, 2004
89.
Ultrahigh Porosity in Metal-Organic Frameworks
Furukawa H., Ko N., Go Y.B., Aratani N., Choi S.B., Choi E., Yazaydin A.Ö., Snurr R.Q., O’Keeffe M., Kim J., Yaghi O.M.
Science, 2010
90.
A Chromium Terephthalate-Based Solid with Unusually Large Pore Volumes and Surface Area
Férey G., Mellot-Draznieks C., Serre C., Millange F., Dutour J., Surblé S., Margiolaki I.
Science, 2005
91.
Industrial applications of metal–organic frameworks
Czaja A.U., Trukhan N., Müller U.
Chemical Society Reviews, 2009
92.
High H2 Uptake in Li-, Na-, K-Metalated Covalent Organic Frameworks and Metal Organic Frameworks at 298 K
Mendoza-Cortés J.L., Han S.S., Goddard W.A.
Journal of Physical Chemistry A, 2012
93.
Metal–Organic Frameworks in Biomedicine
Horcajada P., Gref R., Baati T., Allan P.K., Maurin G., Couvreur P., Férey G., Morris R.E., Serre C.
Chemical Reviews, 2011
95.
Carbon Dioxide Capture in Metal–Organic Frameworks
Sumida K., Rogow D.L., Mason J.A., McDonald T.M., Bloch E.D., Herm Z.R., Bae T., Long J.R.
Chemical Reviews, 2011
96.
Synthesis and Structural Characterization of a Series of Novel Zn(II)-based MOFs with Pyridine-2,5-dicarboxylate Linkers
Isaeva V.I., Belyaeva E.V., Fitch A.N., Chernyshev V.V., Klyamkin S.N., Kustov L.M.
Crystal Growth and Design, 2013
98.
Oxidation of Carbon Monoxide over MLaOxPerovskites Supported on Mesoporous Zirconia
Davshan N.A., Kustov A.L., Tkachenko O.P., Kustov L.M., Kim C.H.
ChemCatChem, 2014
99.
Novel metal-organic 1-D сoordination polymer based on pyrazine-2,5-dicarboxylate ligands: synthesis and structure investigation
Isaeva V., Chernyshev V., Afonina E., Tkachenko O., Klementiev K., Nissenbaum V., Grünert W., Kustov L.
Inorganica Chimica Acta, 2011
100.
2-Butyne-1,4-diol hydrogenation over palladium supported on Zn2+-based – MOF and host–guest MOF/calix[4]arene materials
Isaeva V.I., Tkachenko O.P., Afonina E.V., Kozlova L.M., Kapustin G.I., Grünert W., Solov’eva S.E., Antipin I.S., Kustov L.M.
Microporous and Mesoporous Materials, 2013
101.
Preparation of alumina-supported gold-ruthenium bimetallic catalysts by redox reactions and their activity in preferential CO oxidation
Kirichenko O.A., Redina E.A., Davshan N.A., Mishin I.V., Kapustin G.I., Brueva T.R., Kustov L.M., Li W., Kim C.H.
Applied Catalysis B: Environmental, 2013
102.
Lanthanum cobaltite perovskite supported onto mesoporous zirconium dioxide: Nature of active sites of VOC oxidation
103.
Nanogold-Containing Catalysts for Low-Temperature Removal of S-VOC from Air
Kucherov A.V., Tkachenko O.P., Kirichenko O.A., Kapustin G.I., Mishin I.V., Klementiev K.V., Ojala S., Kustov L.M., Keiski R.
Topics in Catalysis, 2009
104.
Pd–Fe nanoparticles stabilized by chitosan derivatives for perchloroethene dechlorination
Kustov L.M., Finashina E.D., Shuvalova E.V., Tkachenko O.P., Kirichenko O.A.
Environmental International, 2011
106.
Kustov L.M., Tarasov A.L., Sung J., Godovsky D.Y.
Mendeleev Communications, 2014
107.
DRIFT, XPS and XAS Investigation of Au–Ni/Al2O3 Synergetic Catalyst for Allylbenzene Isomerization
Tkachenko O.P., Kustov L.M., Nikolaev S.A., Smirnov V.V., Klementiev K.V., Naumkin A.V., Volkov I.O., Vasil’kov A.Y., Murzin D.Y.
Topics in Catalysis, 2009
109.
Microwave activation of catalysts and catalytic processes
Kustov L.M., Sinev I.M.
Russian Journal of Physical Chemistry A, 2010
110.
Microwave assisted synthesis – a critical technology overview
Nüchter M., Ondruschka B., Bonrath W., Gum A.
Green Chemistry, 2004
111.
Novel Fe-Pd/SiO2 catalytic materials for degradation of chlorinated organic compounds in water
Kustov L.M., Al-Abed S.R., Virkutyte J., Kirichenko O.A., Shuvalova E.V., Kapustin G.I., Mishin I.V., Nissenbaum V.D., Tkachenko O.P., Finashina E.D.
Pure and Applied Chemistry, 2014
112.
Target-oriented analysis of gaseous, liquid and solid chemical systems by mass spectrometry, nuclear magnetic resonance spectroscopy and electron microscopy
Kachala V.V., Khemchyan L.L., Kashin A.S., Orlov N.V., Grachev A.A., Zalesskiy S.S., Ananikov V.P.
Russian Chemical Reviews, 2013
113.
Belyakov P.A., Kadentsev V.I., Chizhov A.O., Kolotyrkina N.G., Shashkov A.S., Ananikov V.P.
Mendeleev Communications, 2010
116.
Efficient Sustainable Tool for Monitoring Chemical Reactions and Structure Determination in Ionic Liquids by ESI-MS
119.
Catalyst leaching as an efficient tool for constructing new catalytic reactions: application to the synthesis of cyclic vinyl sulfides and vinyl selenides
Ananikov V.P., Gayduk K.A., Beletskaya I.P., Khrustalev V.N., Antipin M.Y.
European Journal of Inorganic Chemistry, 2009
121.
Catalytic adaptive recognition of thiol (SH) and selenol (SeH) groups toward synthesis of functionalized vinyl monomers
Ananikov V.P., Orlov N.V., Zalesskiy S.S., Beletskaya I.P., Khrustalev V.N., Morokuma K., Musaev D.G.
Journal of the American Chemical Society, 2012