Contents list
Literature Information
The first page of this article is displayed as the abstract.
Related Literature
An oxygen-vacancy rich 3D novel hierarchical MoS2/BiOI/AgI ternary nanocomposite: enhanced photocatalytic activity through photogenerated electron shuttling in a Z-scheme manner
M. Jahurul Islam, D. Amaranatha Reddy, Noh Soo Han, Jiha Choi, Jae Kyu Song, Tae Kyu Kim
DOI: 10.1039/C6CP02246D
Tuning the structure and mechanical property of polymer nanocomposites by employing anisotropic nanoparticles as netpoints
Jianxiang Shen, Wenchuan Wang
DOI: 10.1039/C6CP04460C
Pushing up the magnetisation values for iron oxide nanoparticles via zinc doping: X-ray studies on the particle's sub-nano structure of different synthesis routes
Jan Żukrowski, Marcin Sikora, Olga Safonova, Aleksey Shmeliov, Valeria Nicolosi, Tim Granath, Maximilian Oppmann, Marion Straßer
DOI: 10.1039/C6CP04221J
Influence of counterions on the conformation of conjugated polyelectrolytes: the case of poly(thiophen-3-ylacetic acid)
Gregor Hostnik, Matjaž Bončina, Caterina Dolce, Guillaume Mériguet, Anne-Laure Rollet, Janez Cerar
DOI: 10.1039/C6CP04193K
Nonresonant electronic transitions induced by vibrational motion in light-induced potentials
Pablo Sampedro, Bo Y. Chang, Ignacio R. Sola
DOI: 10.1039/C6CP04761K
Rational selection of amorphous or crystalline V2O5 cathode for sodium-ion batteries
Shikun Liu, Zhongqiu Tong, Jiupeng Zhao, Xusong Liu, Jing wang, Xiaoxuan Ma, Caixia Chi, Yu Yang, Yao Li
DOI: 10.1039/C6CP04064K
Calculation of Raman parameters of real-size zigzag (n, 0) single-walled carbon nanotubes using finite-size models
Teobald Kupka, Michal Stachów, Leszek Stobiński, Jakub Kaminský
DOI: 10.1039/C6CP04100K
Vapour adsorption kinetics: statistical rate theory and zeta adsorption isotherm approach
Seyed Hadi Zandavi, C. A. Ward
DOI: 10.1039/C6CP05088C
Strong 1D localization and highly anisotropic electron–hole masses in heavy-halogen functionalized graphenes
Lukas Eugen Marsoner Steinkasserer, Alessandra Zarantonello, Beate Paulus
DOI: 10.1039/C6CP05188J
Thermal contact resistance across a linear heterojunction within a hybrid graphene/hexagonal boron nitride sheet
Yang Hong, Jingchao Zhang, Xiao Cheng Zeng
DOI: 10.1039/C6CP03933B
You might also like
What precautions should be taken when handling lithium chloride hydrate (1:1:1) (CAS: 16712-20-2)?
When handling lithium chloride hydrate (1:1:1) (CAS: 16712-20-2), it is importan...
Is 4-(4H-1,2,4-Triazol-4-yl)piperidine (CAS: 690261-92-8) safe?
4-(4H-1,2,4-Triazol-4-yl)piperidine is generally considered safe for use in phar...
How should waste containing 1,3-Thiazole-2-carboxamide (CAS: 16733-85-0) be handled?
Waste containing 1,3-Thiazole-2-carboxamide (CAS: 16733-85-0) should be collecte...
What regulatory guidelines apply to 5-(Difluoromethyl)-2-fluorobenzonitrile (CAS: 934175-58-3)?
5-(Difluoromethyl)-2-fluorobenzonitrile (CAS: 934175-58-3) is subject to regulat...
How is Methyl 3-acetamido-2-thiophenecarboxylate (CAS: 22288-79-5) typically synthesized?
Methyl 3-acetamido-2-thiophenecarboxylate can be synthesized by the reaction of ...
What is 4-Isoquinolinecarbonitrile (CAS: 34846-65-6)?
4-Isoquinolinecarbonitrile is a chemical compound with the CAS number 34846-65-6...
How should Methyl 1H-1,2,3-triazole-4-carboxylate (CAS: 877309-59-6) be stored?
Store Methyl 1H-1,2,3-triazole-4-carboxylate (CAS: 877309-59-6) in a cool, dry p...
What regulatory guidelines apply to 6-Bromo[1,3]thiazolo[5,4-b]pyridin-2-amine (CAS: 1160791-13-8)?
6-Bromo[1,3]thiazolo[5,4-b]pyridin-2-amine (CAS: 1160791-13-8) is subject to the...
Is (2S,3S)-2-Ammonio-3-(3,4-dihydroxyphenyl)-3-hydroxypropanoate (CAS: 23651-95-8) safe?
(2S,3S)-2-Ammonio-3-(3,4-dihydroxyphenyl)-3-hydroxypropanoate (CAS: 23651-95-8) ...
What are the physical and chemical properties of 7-bromo-3-methyl-3,4-dihydroquinazolin-4-one (CAS: 1293987-84-4)?
7-Bromo-3-methyl-3,4-dihydroquinazolin-4-one is a solid with a crystalline form....
Source Journal
Reaction Chemistry & Engineering

Reaction Chemistry & Engineering is an interdisciplinary journal reporting cutting-edge research focused on enhancing the understanding and efficiency of reactions. Reaction engineering leverages the interface where fundamental molecular chemistry meets chemical engineering and technology. Challenges in chemistry can be overcome by the application of new technologies, while engineers may find improved solutions for process development from the latest developments in reaction chemistry. Reaction Chemistry & Engineering is a unique forum for researchers whose interests span the broad areas of chemical engineering and chemical sciences to come together in solving problems of importance to wider society. All papers should be written to be approachable by readers across the engineering and chemical sciences. Papers that consider multiple scales, from the laboratory up to and including plant scale, are particularly encouraged.












![Ethyl 4-[8-chloro(5,5,6,6,7-~2~H_5_)-5,6-dihydro-11H-benzo[5,6]cyclohepta[1,2-b]pyridin-11-ylidene]-1-piperidinecarboxylate structure Ethyl 4-[8-chloro(5,5,6,6,7-~2~H_5_)-5,6-dihydro-11H-benzo[5,6]cyclohepta[1,2-b]pyridin-11-ylidene]-1-piperidinecarboxylate structure](https://static.chemtradehub.com/structs/102/1020719-57-6-37e2.webp)

