A multi-stage growth model leading to high-yield production of carbon nanotubes
Literature Information
Yajun Tian, Huaixin Yang, Shuanglin Zhan, Yunfa Chen
A novel growth model leading to high-yield production of carbon nanotubes with crystallized NixMg1−xMoO4 as the catalyst is revealed.
Recommended Journals
Related Literature
Interrelationship between TiO2 nanoparticle size and kind/size of dyes in the mechanism and conversion efficiency of dye sensitized solar cells
Pooya Tahay, Meisam Babapour Gol Afshani, Ali Alavi, Zahra Parsa, Nasser Safari
DOI: 10.1039/C7CP01159H
Carbon nanotubes kirigami mechanical metamaterials
Chao Wang, Chao Sui, Shuyuan Zhao, Zhisen Zhang, Xiaodong He
DOI: 10.1039/C7CP00312A
Structure–property relationship of blue solid state emissive phenanthroimidazole derivatives
Agne Ivanauskaite, Ramunas Lygaitis, Steponas Raisys, Karolis Kazlauskas, Gediminas Kreiza, Dmytro Volyniuk, Dalius Gudeika, Saulius Jursenas, Juozas V. Grazulevicius
DOI: 10.1039/C7CP02248D
Effect of water on the effective Goldschmidt tolerance factor and photoelectric conversion efficiency of organic–inorganic perovskite: insights from first-principles calculations
Ya-Nan Zhu, Zhi-Feng Xu, Li-Min Liu
DOI: 10.1039/C7CP02659E
Decoupling diffusion from the bimolecular photoinduced electron transfer reaction: a combined ultrafast spectroscopic and kinetic analysis
Puspal Mukherjee, Pratik Sen
DOI: 10.1039/C7CP01387F
Optimization of hydrophilic/hydrophobic phase separation in sPEEK membranes by hydrothermal treatments
H. Mendil-Jakani, I. Zamanillo López, V. H. Mareau, L. Gonon
DOI: 10.1039/C7CP00087A
Reaction mechanism and product branching ratios of the CH + C3H4 reactions: a theoretical study
Joao Marcelo Ribeiro, Alexander M. Mebel
DOI: 10.1039/C7CP01873H
Modeling the absorption spectrum of the permanganate ion in vacuum and in aqueous solution
Jógvan Magnus Haugaard Olsen, Erik Donovan Hedegård
DOI: 10.1039/C7CP01194F
Modulating the electronic structure of lanthanum manganite by ruthenium doping for enhanced photocatalytic water oxidation
Anindya Sundar Patra, Gaurangi Gogoi, Ranjan Kumar Sahu, Mohammad Qureshi
DOI: 10.1039/C7CP01444A
You might also like
Are there alternatives to 1-(4-Chlorophenyl)-N-hydroxymethanimine (CAS: 3848-36-0) in synthesis?
When considering alternatives to 1-(4-Chlorophenyl)-N-hydroxymethanimine (CAS: 3...
How should (1R,9S,10S,12S,14E,16S,19R,20R,21S,22R)-3,9,21-Trihydroxy-5,10,12,14,16,20,22-heptamethyl-23,24-dioxatetracyclo[17.3.1.1~6,9~.0~2,7~]tetracosa-2,5,7,14-tetraen-4-one (CAS: 183202-73-5) be stored?
This compound should be stored in a cool, dry place away from direct sunlight. I...
How is 3-(4-Bromophenyl)-5-(2-fluorophenyl)-1,2,4-oxadiazole (CAS: 419553-16-5) typically synthesized?
3-(4-Bromophenyl)-5-(2-fluorophenyl)-1,2,4-oxadiazole is synthesized through a m...
How is 5-Chloro-2-(4-chlorophenyl)-4-methyl-6-[3-(1-piperidinyl)propoxy]pyrimidine (CAS: 1639220-19-1) typically synthesized?
5-Chloro-2-(4-chlorophenyl)-4-methyl-6-[3-(1-piperidinyl)propoxy]pyrimidine (CAS...
What industries use 2-Chloro-4-(difluoromethoxy)pyridine (CAS: 1206978-15-5)?
2-Chloro-4-(difluoromethoxy)pyridine is used in the pharmaceutical industry for ...
What regulatory guidelines apply to 3-Chloro-6-methylpyridazine (CAS: 1121-79-5)?
3-Chloro-6-methylpyridazine (CAS: 1121-79-5) is classified under the Globally Ha...
Are there alternatives to Methyl 4,5-dimethyl-2-nitrobenzoate in synthesis?
Several alternatives can be used in the synthesis of Methyl 4,5-dimethyl-2-nitro...
Are there alternatives to (2E,2'E)-3,3'-(1,4-Phenylene)bisacrylaldehyde in synthesis?
Alternatives to (2E,2'E)-3,3'-(1,4-Phenylene)bisacrylaldehyde include other acry...
What is 3-Amino-5-chloropyridin-2-ol hydrochloride (CAS: 1261906-29-9)?
3-Amino-5-chloropyridin-2-ol hydrochloride is an organic compound with the CAS n...
What precautions should be taken when handling 6,7-Difluoro-2,3-dihydro-4H-chromen-4-one (CAS: 1092349-93-3)?
When handling 6,7-Difluoro-2,3-dihydro-4H-chromen-4-one, it is essential to wear...
Source Journal
Chemical Communications

ChemComm publishes urgent research which is of outstanding significance and interest to experts in the field, while also appealing to the journal’s broad chemistry readership. Our communication format is ideally suited to short, urgent studies that are of such importance that they require accelerated publication. Our scope covers all topics in chemistry, and research at the interface of chemistry and other disciplines (such as materials science, nanoscience, physics, engineering and biology) where there is a significant novelty in the chemistry aspects. Major topic areas covered include: Analytical Chemistry Catalysis Chemical Biology and medicinal chemistry Computational Chemistry and Machine Learning Energy and sustainable chemistry Environmental Chemistry Green Chemistry Inorganic Chemistry Materials Chemistry Nanoscience Organic Chemistry Physical Chemistry Polymer Chemistry Supramolecular Chemistry













![(2S)-2-{[(9H-Fluoren-9-ylmethoxy)carbonyl]amino}-4-(methylselanyl)butanoic acid structure (2S)-2-{[(9H-Fluoren-9-ylmethoxy)carbonyl]amino}-4-(methylselanyl)butanoic acid structure](https://static.chemtradehub.com/structs/121/1217852-49-7-f252.webp)
![6-Bromo-2,3-dihydro-1H-pyrido[2,3-b][1,4]oxazine structure 6-Bromo-2,3-dihydro-1H-pyrido[2,3-b][1,4]oxazine structure](https://static.chemtradehub.com/structs/120/1203499-17-5-b4d1.webp)