Self-Degrading Molecular Organogels: Self-Assembled Gels Programmed to Spontaneously Liquefy after a Set Time

被引:5
作者
Burni, Faraz A. [1 ]
Xu, Wenhao [2 ]
Spencer, Reuben G. [1 ]
Bergstrom, Evan [1 ]
Chappell, David [3 ]
Wee, Joseph K. [3 ]
Raghavan, Srinivasa R. [1 ,2 ]
机构
[1] Univ Maryland, Dept Chem & Biomol Engn, College Pk, MD 20742 USA
[2] Univ Maryland, Dept Chem & Biochem, College Pk, MD 20742 USA
[3] BP Int Ctr Business & Technol, Chertsey Rd, Sunbury On Thames TW16 7LN, England
关键词
molecular gels; self-destruction; spontaneous degradation; gel-sol transition; ungelling; GELATION; DEGRADATION; GELATORS; POLARITY; OIL;
D O I
10.1002/adfm.202403617
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Gels are used in the oilfield. For example, during oil recovery, organogels are pumped underground into fractures within oil-bearing rock, so as to block fluid flow. However, after several days, the gels must be degraded (liquefied) to enable oil extraction through the fractures. To degrade gels, 'degrading agents' as well as external stimuli have been examined. Here, a concept is demonstrated that avoids external agents and stimuli: self-degrading organogels based on the self-assembly of molecular gelators. The gels are a) extremely robust (free standing solids) at time t = 0 and (b) degrade spontaneously into a sol after a set time t = tdegr that can be minutes, hours, or days. These properties are achieved by combining two readily available molecules - the organogelator (1,3:2,4)-dibenzylidene sorbitol (DBS) and an acid (e.g., hydrochloric acid, HCl) - in an organic solvent. DBS self-assembles into nanoscale fibrils, which connect into a 3-D network, thereby gelling the solvent. The acid type and concentration set the value of tdegr at a given temperature. Degradation occurs because the acid slowly hydrolyzes the acetals on DBS, thereby converting DBS into small molecules that cannot form fibrils. DBS gels with a pre-programmed "degradation clock" can be made with both polar and non-polar organic solvents. The concept can be a game-changer for oil recovery as it promises to make it safer, more efficient, and sustainable. Self-degrading organogels remain robust for a set time, after which they spontaneously degrade to a sol without the need for external stimuli. A time-activated valve based on such a gel will open spontaneously when the gel liquefies. Such gels can be a game-changer for oil recovery as they can provide a solution to the 'lost circulation' problem during oil drilling. image
引用
收藏
页数:12
相关论文
共 37 条
[1]   Synergistic Gelation of Silica Nanoparticles and a Sorbitol-Based Molecular Gelator to Yield Highly-Conductive Free-Standing Gel Electrolytes [J].
Basrur, Veidhes R. ;
Guo, Juchen ;
Wang, Chunsheng ;
Raghavan, Srinivasa R. .
ACS APPLIED MATERIALS & INTERFACES, 2013, 5 (02) :262-267
[2]  
Burni F. A., 2023, SELF DEGRADING ORGAN
[3]   Bioinspired self-degradable hydrogels towards wound sealing [J].
Cao, Qingchen ;
Sun, Guofei ;
Wang, Xing ;
Yang, Fei ;
Zhang, Licheng ;
Wu, Decheng .
BIOMATERIALS SCIENCE, 2021, 9 (10) :3645-3649
[4]   Design principles of food gels [J].
Cao, Yiping ;
Mezzenga, Raffaele .
NATURE FOOD, 2020, 1 (02) :106-118
[5]   Easy degradable polymeric gel with extremely base-labile cross-linking [J].
Chang, Ruixue ;
Li, Na ;
Qin, Jianglei ;
Wang, Haijun .
POLYMER, 2015, 60 :62-68
[6]   Insights into organogelation and its kinetics from Hansen solubility parameters. Toward a priori predictions of molecular gelation [J].
Diehn, Kevin K. ;
Oh, Hyuntaek ;
Hashemipour, Reza ;
Weiss, Richard G. ;
Raghavan, Srinivasa R. .
SOFT MATTER, 2014, 10 (15) :2632-2640
[7]  
Ding SY, 2016, NAT REV MATER, V1, DOI [10.1038/natrevmats.2016.71, 10.1038/natrevmats.2016.21]
[8]  
Dong Y., 2018, Direct Analysis in Real Time Mass Spectrometry: Principles and Practices of DARTMS
[9]   Low-Molecular-Weight Gels: The State of the Art [J].
Draper, Emily R. ;
Adams, Dave J. .
CHEM, 2017, 3 (03) :390-410
[10]   Polymer Gels Used in Oil-Gas Drilling and Production Engineering [J].
Han, Jinliang ;
Sun, Jinsheng ;
Lv, Kaihe ;
Yang, Jingbin ;
Li, Yuhong .
GELS, 2022, 8 (10)