Temperature-controlled helical inversion of asymmetric triphenylamine-based supramolecular polymers; difference of handedness at the micro- and macroscopic levels
Literature Information
Misun Go, Heekyoung Choi, Ka Young Kim, Cheol Joo Moon, Yeonweon Choi, Hiroyuki Miyake, Shim Sung Lee, Sung Ho Jung, Myong Yong Choi, Jong Hwa Jung
This study describes the temperature-controlled helicity inversion of supramolecular polymers based on N-triphenylamines (TPAs) bearing different numbers of D-alanine and/or glycine moieties. Despite chiral branching differences, the three investigated TPAs form helical supramolecular polymers via a typical nucleation–elongation model, characteristic of a cooperative assembly. The supramolecular polymer TPA-3, composed of symmetric tri-alanine segments, was more thermodynamically stable compared with TPA-1 and TPA-2, which had one or two alanine segments. More interestingly, at the microscopic level, temperature-dependent circular dichroism (CD) measurements revealed that the left-handed (M-type) helicity of supramolecular polymers TPA-1 and TPA-2 was inverted to the right-handed (P-type) helicity during heating. The (+/−) pattern of the vibrational circular dichroism (VCD) signal in the region of amide groups of self-assembled TPA-1 was also converted to the (−/+) pattern of the VCD signal. This indicates that the conformation of achiral gycine groups with the left-handed orientation was changed to the conformation of the glycine groups with the right-handed orientation. However, at the macroscopic level, the left- and the right-handed helical fibers were observed to coexist in self-assembled TPA-1 and TPA-2 at lower and higher temperatures. In contrast, no helicity conversion with the increase in temperature was observed for self-assembled TPA-3, which exhibited an ambiguous left-handed helical structure with a long helical pitch. Furthermore, the origin of the helical inversion at the microscopic level was supported via computational simulations. The helical inversion was possibly due to a molecular conformational change of flexible glycine moieties during the formation of supramolecular polymers. Based on AFM observations and DFT calculations, we conclude that even though either the positive or the negative signal of supramolecular polymers TPAs was obtained in CD spectra, the right- and the left-handed supramolecular polymer TPAs co-existed at the microscopic and macroscopic levels. Thus, the handedness of supramolecular polymers TPAs was determined by relative distribution of the right- and left-handed helical fibers.
Recommended Journals

Main Group Metal Chemistry

Advanced Composite Materials

Bio-Medical Materials and Engineering

Computational Materials Science

Composite Interfaces

Advances in Cement Research

Cement and Concrete Composites

Construction and Building Materials

Journal of Physical Organic Chemistry

Diamond and Related Materials
Related Literature
Magnetic field effects dynamics of ethylammonium nitrate ionic liquid confined between glass plates
DOI: 10.1039/C7CP06554J
Correction: Insights into the enhanced CeN triple bond in the HCeN molecule
Zhen Pu, Wenjie Yu, Soumendra K. Roy, Chaoyang Li, Bingyun Ao, Tianwei Liu, Maobing Shuai, Xuefeng Wang
DOI: 10.1039/C8CP91766C
Phase equilibrium and physical properties of biobased ionic liquid mixtures
Ariel A. C. Toledo Hijo, Guilherme J. Maximo, Rosiane L. Cunha, Felipe H. S. Fonseca, Lisandro P. Cardoso, Jorge F. B. Pereira, Mariana C. Costa, Eduardo A. C. Batista, Antonio J. A. Meirelles
DOI: 10.1039/C7CP06841G
Viable aromatic BenHn stars enclosing a planar hypercoordinate boron or late transition metal
Xue-Feng Zhao, Jia-Jia Li, Hai-Ru Li, Caixia Yuan, Xinxin Tian, Si-Dian Li, Yan-Bo Wu, Zhi-Xiang Wang
DOI: 10.1039/C7CP06955C
Persistent homology analysis of ion aggregations and hydrogen-bonding networks
DOI: 10.1039/C8CP01552J
Radiation-induced disorder in compressed lanthanide zirconates
Sulgiye Park, Cameron L. Tracy, Fuxiang Zhang, Changyong Park, Sergey N. Tkachev, Maik Lang, Rodney C. Ewing
DOI: 10.1039/C7CP08664D
Effects of CNT size on the desalination performance of an outer-wall CNT slit membrane
Elisa Y. M. Ang, Teng Yong Ng, Rongming Lin, Zishun Liu, K. R. Geethalakshmi
DOI: 10.1039/C8CP01191E
An insight into the origin of room-temperature ferromagnetism in SnO2 and Mn-doped SnO2 quantum dots: an experimental and DFT approach
Dhamodaran Manikandan, S. Amirthapandian, I. S. Zhidkov, A. I. Kukharenko, S. O. Cholakh, Ramaswamy Murugan
DOI: 10.1039/C7CP07182E
On the cononsolvency behaviour of hydrophobic clusters in water–methanol solutions
Andrea Pica, Giuseppe Graziano
DOI: 10.1039/C7CP07943E
Transition of surface phase of cobalt oxide during CO oxidation
Yu Tang, Jian Dou, Christopher M. Andolina, Yuting Li, Hongbin Ma, Stephen D. House, Xiaoyan Zhang, Judith Yang, Franklin (Feng) Tao
DOI: 10.1039/C7CP07407G
You might also like
What precautions should be taken when handling 4-Methyl-6-(trifluoromethyl)quinoline (CAS: 40716-16-3)?
When handling 4-Methyl-6-(trifluoromethyl)quinoline (CAS: 40716-16-3), safety go...
What is 4-(3,5-Difluorophenyl)aniline (CAS: 405058-00-6)?
4-(3,5-Difluorophenyl)aniline is an aromatic organic compound with the CAS numbe...
How is 5-{[4-(Trifluoromethyl)phenyl]sulfanyl}-1,2,3-thiadiazole-4-carboxylic acid (CAS: 338982-07-3) typically synthesized?
5-{[4-(Trifluoromethyl)phenyl]sulfanyl}-1,2,3-thiadiazole-4-carboxylic acid can ...
What is the market or research trend for 4-Benzylaniline hydrochloride (CAS: 6317-57-3)?
The market for 4-Benzylaniline hydrochloride (CAS: 6317-57-3) is steadily growin...
Is [3-(Diethylsulfamoyl)phenyl]boronic acid (CAS: 871329-58-7) safe?
[3-(Diethylsulfamoyl)phenyl]boronic acid is generally considered safe when handl...
What are the main uses of 3-Bromo-2,5-dimethoxyaniline (CAS: 115929-62-9)?
3-Bromo-2,5-dimethoxyaniline is mainly used in the pharmaceutical and chemical i...
What regulatory guidelines apply to N-Methyl-1-(5-methyl-1H-indol-3-yl)methanamine (CAS: 915922-67-7)?
N-Methyl-1-(5-methyl-1H-indol-3-yl)methanamine (CAS: 915922-67-7) is subject to ...
What industries use Carbamic acid, N-[(5S)-5,6-diamino-6-oxohexyl]-, 1,1-dimethylethyl ester (CAS: 24828-96-4)?
This compound is primarily used in the pharmaceutical industry for the synthesis...
How should 2-Methyl-2-propanyl [(1S,3R)-3-aminocyclohexyl]carbamate (CAS: 1298101-47-9) be stored?
2-Methyl-2-propanyl [(1S,3R)-3-aminocyclohexyl]carbamate (CAS: 1298101-47-9) sho...
What industries use Ethyl 2-bromo-4,4,4-trifluorobutanoate (CAS: 367-33-9)?
Ethyl 2-bromo-4,4,4-trifluorobutanoate (CAS: 367-33-9) is utilized in the pharma...
Source Journal
Organic Chemistry Frontiers

Organic Chemistry Frontiers publishes high-quality research from across organic chemistry. Emphases are placed on studies that make significant contributions to the field of organic chemistry by reporting either new or significantly improved protocols or methodologies. Topics include, but are not limited to the following: Organic synthesis Development of synthetic methodologies Catalysis Natural products Functional organic materials Supramolecular and macromolecular chemistry Physical and computational organic chemistry


![6,7-Dihydro-5H-pyrrolo[1,2-a]imidazole-6-carboxylic acid structure 6,7-Dihydro-5H-pyrrolo[1,2-a]imidazole-6-carboxylic acid structure](https://static.chemtradehub.com/structs/136/1369160-12-2-6524.webp)
![(4aR,5S,6R,8aS)-5-[2-(3-Furyl)ethyl]-8a-(hydroxymethyl)-5,6-dimethyl-3,4,4a,5,6,7,8,8a-octahydro-1-naphthalenecarboxylic acid structure (4aR,5S,6R,8aS)-5-[2-(3-Furyl)ethyl]-8a-(hydroxymethyl)-5,6-dimethyl-3,4,4a,5,6,7,8,8a-octahydro-1-naphthalenecarboxylic acid structure](https://static.chemtradehub.com/structs/184/18411-75-1-d4cd.webp)
![Methyl 3-({2'-[(E)-(hydroxyhydrazono)methyl]-4-biphenylyl}methyl)-2-oxo-2,3-dihydro-1H-benzimidazole-4-carboxylate structure Methyl 3-({2'-[(E)-(hydroxyhydrazono)methyl]-4-biphenylyl}methyl)-2-oxo-2,3-dihydro-1H-benzimidazole-4-carboxylate structure](https://static.chemtradehub.com/structs/149/1499167-72-4-034a.webp)