Article cité par

La fonctionnalité Article cité par… liste les citations d'un article. Ces citations proviennent de la base de données des articles de EDP Sciences, ainsi que des bases de données d'autres éditeurs participant au programme CrossRef Cited-by Linking Program. Vous pouvez définir une alerte courriel pour être prévenu de la parution d'un nouvel article citant " cet article (voir sur la page du résumé de l'article le menu à droite).

Article cité :

Photonics of Two-Dimensional Structures Formed by Cholesteric Liquid Crystals

P. V. Dolganov, K. D. Baklanova, V. K. Dolganov and E. I. Kats
JETP Letters 120 (10) 772 (2024)
https://doi.org/10.1134/S0021364024603919

Tunable templating of photonic microparticles via liquid crystal order-guided adsorption of amphiphilic polymers in emulsions

Xu Ma, Yucen Han, Yan-Song Zhang, Yong Geng, Apala Majumdar and Jan P. F. Lagerwall
Nature Communications 15 (1) (2024)
https://doi.org/10.1038/s41467-024-45674-5

Sequence of Three-, Two-, and One-Dimensional Structures Formed from a Cholesteric Liquid Crystal at Change in the Chirality

K. D Baklanova, V. K Dolganov, E. I Kats and P. V Dolganov
Pisʹma v žurnal êksperimentalʹnoj i teoretičeskoj fiziki 117 (7-8 (4)) 537 (2023)
https://doi.org/10.31857/S1234567823070091

Sequence of Three-, Two-, and One-Dimensional Structures Formed from a Cholesteric Liquid Crystal at Change in the Chirality

K. D. Baklanova, V. K. Dolganov, E. I. Kats and P. V. Dolganov
JETP Letters 117 (7) 535 (2023)
https://doi.org/10.1134/S002136402360043X

Peculiarities of focal conic structure formed near the cholesteric-isotropic phase transition

P. V. Dolganov, K. D. Baklanova and V. K. Dolganov
Physical Review E 106 (1) (2022)
https://doi.org/10.1103/PhysRevE.106.014703

Chiral nematic phase formation by aqueous suspensions of cellulose nanocrystals prepared by oxidation with ammonium persulfate

Carlos F. Castro-Guerrero and Derek G. Gray
Cellulose 21 (4) 2567 (2014)
https://doi.org/10.1007/s10570-014-0308-1

Synthesis, Dielectric, and Photochemical Study of Liquid Crystalline Main Chain Poly(ester imide)s Containing Cinnamoyl Moieties

Beate Sapich, Joachim Stumpe, Hans R. Kricheldorf, Andreas Fritz and Andreas Schönhals
Macromolecules 34 (16) 5694 (2001)
https://doi.org/10.1021/ma001616b

New Polymer Syntheses. 95. Photosetting Cholesteric Polyesters Derived from 4-Hydroxycinnamic Acid and Isosorbide

Beate Sapich, Joachim Stumpe, Thorsten Krawinkel and Hans R. Kricheldorf
Macromolecules 31 (4) 1016 (1998)
https://doi.org/10.1021/ma971027e

Lc-Polyimides. 33. Poly(Ester-Imide)s of 4,4′-Diaminodiphenyl Ether Bistrimellitimide

Hans R Kricheldorf, Thorsten Krawinkel and Gert Schwarz
Journal of Macromolecular Science, Part A 35 (11) 1853 (1998)
https://doi.org/10.1080/10601329808000557

Layer structures 11. Cholesteric polyesters derived from isosorbide, 2,5-bis(dodecyloxy)terephthalic acid and 4,4′-dihydroxybiphenyl

Hans R. Kricheldorf and Dirk F. Wulff
Polymer 39 (24) 6145 (1998)
https://doi.org/10.1016/S0032-3861(98)00127-X

New Polymer Syntheses 87. Thermosetting Nematic or Cholesteric Diesters Having Propargyl Endgroups

Hans R Kricheldorf and Andreas Gerken
High Performance Polymers 9 (2) 75 (1997)
https://doi.org/10.1088/0954-0083/9/2/001

LC Polyimides 29. Non-Crystalline Cholesteric Copoly(Ester-Imide)s Derived from Adipic Acid and Isosorbide

Hans R Kricheldorf and Thorsten Krawinkel
High Performance Polymers 9 (2) 91 (1997)
https://doi.org/10.1088/0954-0083/9/2/002

LC Polyimides 31. Non-Crystalline Cholesteric Poly(Ester-Imide)s Based on Isosorbide and 1,6-Hexanediol

Hans R Kricheldorf and Thorsten Krawinkel
High Performance Polymers 9 (2) 121 (1997)
https://doi.org/10.1088/0954-0083/9/2/004

New Polymer Syntheses. 89. Thermosetting Cholesteric Oligoesters Having Propargyl Endgroups

Hans R. Kricheldorf and Andreas Gerken
Journal of Macromolecular Science, Part A 34 (6) 955 (1997)
https://doi.org/10.1080/10601329708015003

Polymers of carbonic acid, 23. Photoreactive cholesteric polycarbonates based on isosorbide, 4,4′‐dihydroxychalcone and 4,4′‐dihydroxybiphenyl

Hans R. Kricheldorf, Shih‐Jieh Sun, Beate Sapich and Joachim Stumpe
Macromolecular Chemistry and Physics 198 (7) 2197 (1997)
https://doi.org/10.1002/macp.1997.021980716

LC Polyimides 30. Non-Crystalline Cholesteric Poly(Ester-Imide)s Based on Isosorbide and 1, 6-Bis(4-Carboxyphenoxy)Hexane

Hans R Kricheldorf and Thorsten Krawinkel
High Performance Polymers 9 (2) 105 (1997)
https://doi.org/10.1088/0954-0083/9/2/003

Structure of the cholesteric focal conic domains at the free surface

R. Meister, M.-A. Hallé, H. Dumoulin and P. Pieranski
Physical Review E 54 (4) 3771 (1996)
https://doi.org/10.1103/PhysRevE.54.3771

Cholesteric and photoreactive polyesters

Hans R. Kricheldorf, Matthias Berghahn, Nicolas Probst, Mihai Gurau and Gert Schwarz
Reactive and Functional Polymers 30 (1-3) 173 (1996)
https://doi.org/10.1016/1381-5148(96)00018-1

Liquid‐crystalline polyimides, 23. Photoreactive, cholesteric copoly(ester‐imide)s derived from 1,4‐phenylenediacrylic acid and 4‐aminobenzoic trimellitimide

Hans R. Kricheldorf and Nicolas Probst
Macromolecular Chemistry and Physics 196 (11) 3511 (1995)
https://doi.org/10.1002/macp.1995.021961106

LC-polyimides 26. Photoreactive, nematic or cholesteric poly(ester-imide)s derived from 4-aminocinnamic acid trimellitimide, isosorbide and various diphenols

Hans R Kricheldorf and Nicolas Probst
High Performance Polymers 7 (4) 471 (1995)
https://doi.org/10.1088/0954-0083/7/4/009

LC-polyimides 24. Cholesteric copoly(ester-imide)s derived from 4-aminobenzoic trimellitimide and isomannide or 1,3-butanediol

Nicolas Probst and Hans R Kricheldorf
High Performance Polymers 7 (4) 461 (1995)
https://doi.org/10.1088/0954-0083/7/4/008

LC‐Polyimides. XIX. Chiral and thermotropic poly(esterimide)s based on N‐(4′‐caboxyphenyl)trimellitimide and novel chiral spacers

Hans R. Kricheldorf and Matthias Berghahn
Journal of Polymer Science Part A: Polymer Chemistry 33 (3) 427 (1995)
https://doi.org/10.1002/pola.1995.080330310

On a Discovery of a New Chiral Liquid Crystal with Unusual Electrooptic Behavior. Experimental Results

H. P. Hinov, N. Shonova and S. D. Toshev
Molecular Crystals and Liquid Crystals 209 (1) 63 (1991)
https://doi.org/10.1080/00268949108036179

Disclination interaction in an applied field: Stabilization of the Lehmann cluster

Steven D. Hudson and Edwin L. Thomas
Physical Review A 44 (12) 8128 (1991)
https://doi.org/10.1103/PhysRevA.44.8128

Freeze-Fractures in Cholesteric Mesophases of Polymers

F. Livolant and Y. Bouligand
Molecular Crystals and Liquid Crystals Incorporating Nonlinear Optics 166 (1) 91 (1989)
https://doi.org/10.1080/00268948908037140

Cholesteric liquid crystalline phases given by three helical biological polymers : DNA, PBLG and xanthan. A comparative analysis of their textures

F. Livolant
Journal de Physique 47 (9) 1605 (1986)
https://doi.org/10.1051/jphys:019860047090160500

New Intrinsic Cholesteric Lyomesophases From Potassium l-N-Lauroylserinate. II. Type II Systems: Unusual Textural and Deuteron NMR Behavior

Maria Regina Alcantara, Maria Verônica, Marques Correia, et al.
Molecular Crystals and Liquid Crystals 107 (3-4) 359 (1984)
https://doi.org/10.1080/00268948408070447

Observations of Electrically Surface-Induced Regular Arrays of Focal Conies in a Homeotropic NPOB Smectic A Liquid Crystal

H. P. Hinov, N. Shonova and K. Avramova
Molecular Crystals and Liquid Crystals 97 (1) 297 (1983)
https://doi.org/10.1080/00268948308073159

Polymorphism in the Homologous Series of the 2- [4-n-Alkylphenyl]-5- [4-n-alkyloxyphenyl]pyrimidines

A. Biering, D. Demus, L. Richter, et al.
Molecular Crystals and Liquid Crystals 62 (1-2) 1 (1980)
https://doi.org/10.1080/15421408008084005

Electrohydrodynamic instabilities in nematic liquids of positive dielectric ansiotropy

Alan Sussman
Applied Physics Letters 29 (10) 633 (1976)
https://doi.org/10.1063/1.88905

Recherches sur les textures des états mésomorphes. 6 — Dislocations coins et signification des cloisons de Grandjean-Cano dans les cholestériques

Y. Bouligand
Journal de Physique 35 (12) 959 (1974)
https://doi.org/10.1051/jphys:019740035012095900