7 A Primer on Gels (with an Emphasis on Molecular Gels)
317
7. McNaught, A.D., Wilkinson, A.: IUPAC. Compendium of Chemical Terminology (the “Gold
Book”), 2nd edn. Blackwell Scientific, Oxford (1997)
8. Dawn, A., Kumari, H.: Low Molecular Weight Supramolecular Gels Under Shear: Rheology
as the Tool for Elucidating Structure-Function Correlation. Chem. Eur. J. 24, 762–776 (2018)
9. Marangoni, A.G.: Kinetic Analysis of Food Systems. Springer, Switzerland, p. 161ff (2017)
10. Huang, X., Raghavan, S.R., Terech, P., Weiss, R.G.: Distinct Kinetic Pathways Generate
Organogel Networks with Contrasting Fractality and Thixotropic Properties. J. Am. Chem.
Soc. 128, 15341–15352 (2006)
11. Fuentes-Caparrós, A.M., Dietrich, B., Thomson, L., Chauveau, C., Adams, D.J.: Using cavitation rheology to understand dipeptide-based low molecular weight gels. Soft Matter. 15,
6340–6347 (2019)
12. (a) Li, J.-J., Zhang, M., Weiss, R.G.: (R)-12-Hydroxystearic acid hydrazides as very efficient
gelators: Diffusion, partial thixotropy, and self-healing in self-standing gels. Chem. Asian J.
11, 3414–3422 (2016). (b) Song, J., Wang, H., Li, M.: An NMR study on the gelation of
N,N -bis(4-N-alkylo-xybenzoyl) hydrazine (4Dn) in two aromatic solvents. New. J. Chem. 39,
2711–2719 (2015)
13. Feng, L., Cavicchi, K.A.: Investigation of the relationships between the thermodynamic phase
behavior and gelation behavior of a series of tripodal trisamide compounds. Soft Matter 8,
6483–6492 (2012)
14. Takahashi, A., Sakai, M., Kato, T.: Melting temperature of thermally reversible gel. VI. Effect
of branching on the sol–gel transition of polyethylene gels. Polym. J. 12, 335–341 (1980)
15. Weiss, C.K., Toca-Herrera, J.L. (eds.): Colloid Chemistry. Basel, MDPI (2018)
16. Hsu, F.C., Tsai, S.F., Lee, S.-S.: Chemical investigation of Hyptis suaveolens seed, a potential
antihyperuricemic nutraceutical, with assistance of HPLC-SPE-NMR. J. Food Drug Anal. 27,
897–905 (2019)
17. (a) Dresel, W., Heckler, R.P.: Lubricating greases in lubricants and lubrication. In: Mang, T.,
Dresel, W. (eds) Lubricants and Lubrication. Wiley, Weinheim (2017). (b) Mortier, R.M., Fox,
M.F., Orszulik, S.T.: Chemistry and Technology of Lubricants, 3rd edn. Springer, Dordrecht
(2010)
18. Lipowitz, A.: Versuche und Resultate über die Löslichkeit der Harnsäure. Liebigs Ann Chem
Pharm 38, 348–355 (1841)
19. Graham, T.: X. liquid diffusion applied to analysis. Phil. Trans. Roy Soc. 151, 183–224 (1861)
20. te Nijenhuis, K.: Thermoreversible networks. Adv. Polym. Sci. 130 (Springer Verlag, Berlin)
(1997)
21. Escuder, B., Miravet, J.F. (eds.): Functional Molecular Gelators. RSocietyC Publishing,
Cambridge (2014)
22. Liu, X.Y., Li, J.L. (eds.): Soft Fibrillar Materials: Fabrication and Applications. Wiley-VCH
Verlag, Weinheim (2013)
23. Weiss, R.G., Terech, P. (eds.): Molecular Gels. Materials with Self-Assembled Fibrillar
Networks. Springer, Dordrecht (2006)
24. Weiss, R.G. (ed.): Molecular Gels. Royal Society of Chemistry, United Kingdom (2018)
25. Loh, X.J., Scherman, O.A. (eds.): Polymeric and Self Assembled Hydrogels. RSC Publishing,
Cambridge (2013)
26. Weiss, R.G.: The past, present, and future of molecular gels. What is the status of the field and
where is it going? J. Am. Chem. Soc. 136, 7519–7530 (2014)
27. Lloyd, D.J.: The problem of gel structure. In: Alexander, J. (ed.) Colloid Chemistry, vol. 1,
pp. 767–782. The Chemical Catalog Co, New York (1926)
28. Weiss, R.G.: Controlling variables in molecular gel science. How can we improve the state of
the art? Gels 4, 25ff (9 pages) (2018)
29. Guenet, J.M.: Organogels. Thermodynamics, structure, solvent role, and properties. Springer
Nature, Switzerland (2016)
30. Bag, B.G., Majumdar, R.: Self-assembly of renewable nano-sized triterpenoids. Chem. Rec.
17, 841–873 (2017)
317
7. McNaught, A.D., Wilkinson, A.: IUPAC. Compendium of Chemical Terminology (the “Gold
Book”), 2nd edn. Blackwell Scientific, Oxford (1997)
8. Dawn, A., Kumari, H.: Low Molecular Weight Supramolecular Gels Under Shear: Rheology
as the Tool for Elucidating Structure-Function Correlation. Chem. Eur. J. 24, 762–776 (2018)
9. Marangoni, A.G.: Kinetic Analysis of Food Systems. Springer, Switzerland, p. 161ff (2017)
10. Huang, X., Raghavan, S.R., Terech, P., Weiss, R.G.: Distinct Kinetic Pathways Generate
Organogel Networks with Contrasting Fractality and Thixotropic Properties. J. Am. Chem.
Soc. 128, 15341–15352 (2006)
11. Fuentes-Caparrós, A.M., Dietrich, B., Thomson, L., Chauveau, C., Adams, D.J.: Using cavitation rheology to understand dipeptide-based low molecular weight gels. Soft Matter. 15,
6340–6347 (2019)
12. (a) Li, J.-J., Zhang, M., Weiss, R.G.: (R)-12-Hydroxystearic acid hydrazides as very efficient
gelators: Diffusion, partial thixotropy, and self-healing in self-standing gels. Chem. Asian J.
11, 3414–3422 (2016). (b) Song, J., Wang, H., Li, M.: An NMR study on the gelation of
N,N -bis(4-N-alkylo-xybenzoyl) hydrazine (4Dn) in two aromatic solvents. New. J. Chem. 39,
2711–2719 (2015)
13. Feng, L., Cavicchi, K.A.: Investigation of the relationships between the thermodynamic phase
behavior and gelation behavior of a series of tripodal trisamide compounds. Soft Matter 8,
6483–6492 (2012)
14. Takahashi, A., Sakai, M., Kato, T.: Melting temperature of thermally reversible gel. VI. Effect
of branching on the sol–gel transition of polyethylene gels. Polym. J. 12, 335–341 (1980)
15. Weiss, C.K., Toca-Herrera, J.L. (eds.): Colloid Chemistry. Basel, MDPI (2018)
16. Hsu, F.C., Tsai, S.F., Lee, S.-S.: Chemical investigation of Hyptis suaveolens seed, a potential
antihyperuricemic nutraceutical, with assistance of HPLC-SPE-NMR. J. Food Drug Anal. 27,
897–905 (2019)
17. (a) Dresel, W., Heckler, R.P.: Lubricating greases in lubricants and lubrication. In: Mang, T.,
Dresel, W. (eds) Lubricants and Lubrication. Wiley, Weinheim (2017). (b) Mortier, R.M., Fox,
M.F., Orszulik, S.T.: Chemistry and Technology of Lubricants, 3rd edn. Springer, Dordrecht
(2010)
18. Lipowitz, A.: Versuche und Resultate über die Löslichkeit der Harnsäure. Liebigs Ann Chem
Pharm 38, 348–355 (1841)
19. Graham, T.: X. liquid diffusion applied to analysis. Phil. Trans. Roy Soc. 151, 183–224 (1861)
20. te Nijenhuis, K.: Thermoreversible networks. Adv. Polym. Sci. 130 (Springer Verlag, Berlin)
(1997)
21. Escuder, B., Miravet, J.F. (eds.): Functional Molecular Gelators. RSocietyC Publishing,
Cambridge (2014)
22. Liu, X.Y., Li, J.L. (eds.): Soft Fibrillar Materials: Fabrication and Applications. Wiley-VCH
Verlag, Weinheim (2013)
23. Weiss, R.G., Terech, P. (eds.): Molecular Gels. Materials with Self-Assembled Fibrillar
Networks. Springer, Dordrecht (2006)
24. Weiss, R.G. (ed.): Molecular Gels. Royal Society of Chemistry, United Kingdom (2018)
25. Loh, X.J., Scherman, O.A. (eds.): Polymeric and Self Assembled Hydrogels. RSC Publishing,
Cambridge (2013)
26. Weiss, R.G.: The past, present, and future of molecular gels. What is the status of the field and
where is it going? J. Am. Chem. Soc. 136, 7519–7530 (2014)
27. Lloyd, D.J.: The problem of gel structure. In: Alexander, J. (ed.) Colloid Chemistry, vol. 1,
pp. 767–782. The Chemical Catalog Co, New York (1926)
28. Weiss, R.G.: Controlling variables in molecular gel science. How can we improve the state of
the art? Gels 4, 25ff (9 pages) (2018)
29. Guenet, J.M.: Organogels. Thermodynamics, structure, solvent role, and properties. Springer
Nature, Switzerland (2016)
30. Bag, B.G., Majumdar, R.: Self-assembly of renewable nano-sized triterpenoids. Chem. Rec.
17, 841–873 (2017)
