A tale of two minerals: contrasting behaviors and mitigation strategies of gypsum scaling and silica scaling in membrane desalination
Tiezheng Tong1,2(), Shinyun Park1,2, Yiqun Yao1,2
. Department of Civil and Environmental Engineering, Colorado State University, Fort Collins, CO 80523, USA . School of Sustainable Engineering and the Built Environment, Arizona State University, Tempe, AZ 85287, USA
Mineral scaling represents a major constraint that limits the efficiency of membrane desalination, which is becoming increasingly important for achieving sustainable water supplies in the context of a changing climate. Different mineral scales can be formed via distinct mechanisms that lead to a significant variation of scaling behaviors and mitigation strategies. In this article, we present a comprehensive review that thoroughly compares gypsum scaling and silica scaling, which are two common scaling types formed via crystallization and polymerization respectively, in membrane desalination. We show that the differences between scale formation mechanisms greatly affect the thermodynamics, kinetics, and mineral morphology of gypsum scaling and silica scaling. Then we review the literatures on the distinct behaviors of gypsum scaling and silica scaling during various membrane desalination processes, examining their varied damaging effects on desalination efficiency. We further scrutinize the different interactions of gypsum and silica with organic foulants, which result in contrasting consequences of combined scaling and fouling. In addition, the distinctive mitigation strategies tailored to controlling gypsum scaling and silica scaling, including scaling-resistant membrane materials, antiscalants, and pretreatment, are discussed. We conclude this article with the research needs of attaining a better understanding of different mineral scaling types, aiming to inspire researchers to take scale formation mechanism into consideration when developing more effective approaches of scaling control in membrane desalination.
Just Accepted Date: 29 August 2024Issue Date: 29 October 2024
Cite this article:
Tiezheng Tong,Shinyun Park,Yiqun Yao. A tale of two minerals: contrasting behaviors and mitigation strategies of gypsum scaling and silica scaling in membrane desalination[J]. Front. Environ. Sci. Eng.,
2025, 19(1): 3.
Fig.1 (A) Schematic of classical nucleation theory and non-classical nucleation pathway of mineral formation. (B) The change of free energy during mineral nucleation. and refer to the free energy barrier to homogeneous nucleation and heterogeneous nucleation, respectively. (C) Schematic of four stages of gypsum crystal formation, including the formation, aggregation, self-assembly, and coalescence of CaSO4 clusters. (D) Transmission electron microscopic image of bassanite nanorods formed before gypsum crystal formation. The figures are adapted with permission from Meldrum and Sear (2008), copyright American Association for the Advancement of Science; Tong et al. (2019a), copyright Elsevier; Stawski et al. (2016), copyright Nature Portfolio; Van Driessche et al. (2012), copyright American Association for the Advancement of Science.
Fig.2 Schematic of silicic acid polymerization that leads to silica formation.
Fig.3 (A and B) Water vapor flux (red) and feed conductivity (blue) curves during MD desalination in the presence of (A) gypsum scaling and (B) silica scaling. (C and D) Normalized transmembrane impedance (red) and distillate conductivity (blue) during MD desalination in the presence of (C) gypsum scaling and (D) silica scaling. A decrease of normalized impedance and an increase of distillate conductivity indicate the occurrence of pore wetting. (E and F) Top-down SEM images of (E) gypsum and (F) silica scales formed in MD. (G and H) Cross-section energy dispersive X-ray spectroscopy mapping of membranes scaled by (G) gypsum and (H) silica. The figures are adapted with permission from Christie et al. (2020), copyright American Chemical Society.
Fig.4 Representative normalized water flux decline curves for (A and B) gypsum and (C and D) silica scaling in the presence of proteins in RO. Each graph includes water flux curves of individual mineral scaling and organic fouling, the additive curve of individual scaling and fouling, and the actual water flux curve of combined scaling and fouling. (E and F) SEM images of the membrane surface after combined scaling and fouling experiments: gypsum scaling with (E) BSA and (F) lysozyme fouling, and silica scaling with (G) BSA and (H) lysozyme fouling. The figures are adapted with permission from Park et al. (2024) (A, B, E, F), copyright Elsevier; Quay et al. (2018) (C, D, G, H), copyright American Chemical Society.
Fig.5 (A) Water flux curve of RO desalinating feedwater containing supersaturated silica using membranes of different surface properties. (B) The water flux decline ratio of membranes shown in Fig. 5(A) demonstrates a strong correlation with surface charge, manifested by zeta potential, of the membranes. (C) Mechanisms underlying the relationship between membrane surface charge and propensity of silica scaling. (D) Water flux curve of RO desalinating feedwater containing supersaturated gypsum using a pristine polyamide membrane and membranes coated with zwitterionic polymer. (E) The membrane-water and membrane-gypsum interfacial free energies for the pristine polyamide and zwitterion-coated membranes. The figures are adapted with permission from Tong et al. (2017), copyright American Chemical Society; Jaramillo et al. (2021), copyright Elsevier.
Fig.6 (A–F) Three possible mechanisms underlying the resistance of superhydrophobic membranes against gypsum scaling in MD. It is worth mentioning that the mechanism shown by Figures 6E and 6F is unlikely to be the main mechanism because gypsum is described more appropriately by a non-classical pathway. (G) A four-step mechanism of silica scaling in MD. The figures are adapted with permission from Horseman et al. (2021), copyright American Chemical Society; Yin et al. (2019), copyright Royal Society of Chemistry.
Fig.7 (A and B) Normalized water vapor flux as a function of water recovery in MD for (A) gypsum scaling and (B) silica scaling in the presence of different antiscalant candidates. (C and D) Schematic illustration of the mechanisms of antiscalants for mitigating (C) gypsum scaling and (D) silica scaling in MD. (E) Schematic illustration of amino-containing polymers of different conformation hindering silica polymerization through interactions with silicic acid. The figures are adapted with permission from Yin et al. (2021), copyright American Chemical Society; Kaneda et al. (2024), copyright American Chemical Society.
Fig.8 Schematic illustrations of different pretreatment techniques. (A) Ion-ion selective separation process using NF for gypsum scaling mitigation. (B) Magnetic iron-aluminum hybrid nanomaterials for silica removal. (C) Electrocoagulation for removing silica and hardness. The figures are adapted with permission from (Zhang and Zhang, 2021) (copyright Elsevier), (Guan et al., 2019) (copyright American Chemical Society) and (Liu et al., 2022) (copyright American Chemical Society).
Gypsum scaling
Silica scaling
Formation mechanism
Crystallization
Polymerization
Formation kinetics
Fast
Slow
Crystal growth
Anisotropic
Isotropic
Membrane surface property – scaling propensity relationship in RO
Grafting of hydrophilic polymer brushes reduces scaling
More negative charged membrane reduces scaling
Membrane surface property – scaling propensity relationship in MD
Superhydrophobic membranes reduce scaling
Not sensitive to membrane surface wettability
Inducting pore wetting in MD
Yes
No
Interactions with organic foulants
Antagonistic or additive effects (e.g., the presence of BSA reduces scaling)
Amplifying effects (e.g., the presence of BSA facilitates scaling)
Antiscalants in RO
Carboxyl- and phosphonate-based molecules(elimination of water flux decline is achievable)
Poly(ethylene glycol)-based molecules (elimination of water flux decline has not been achieved)
Antiscalants in MD
Carboxyl- and phosphonate-based molecules
Amine-enriched molecules and poly(ethylene glycol)-based molecules
Tab.1 Comparison between gypsum scaling and silica scaling in membrane desalination
1
B Abada, S Joag, B Alspach, A Bustamante, S Chellam. (2023). Inorganic and organic silicon fouling of nanofiltration membranes during pilot-scale direct potable reuse. ACS ES&T Engineering, 3(9): 1413–1423 https://doi.org/10.1021/acsestengg.3c00172
W Ang, A W Mohammad, A Benamor, N Hilal. (2016). Hybrid coagulation–NF membrane processes for brackish water treatment: effect of pH and salt/calcium concentration. Desalination, 390: 25–32 https://doi.org/10.1016/j.desal.2016.03.018
4
S F Anis, R Hashaikeh, N Hilal. (2019). Reverse osmosis pretreatment technologies and future trends: a comprehensive review. Desalination, 452: 159–195 https://doi.org/10.1016/j.desal.2018.11.006
5
A Antony, J H Low, S Gray, A E Childress, P Le-Clech, G Leslie. (2011). Scale formation and control in high pressure membrane water treatment systems: a review. Journal of Membrane Science, 383(1−2): 1–16 https://doi.org/10.1016/j.memsci.2011.08.054
6
M Badruzzaman, A Subramani, J Decarolis, W Pearce, J G Jacangelo. (2011). Impacts of silica on the sustainable productivity of reverse osmosis membranes treating low-salinity brackish groundwater. Desalination, 279(1−3): 210–218 https://doi.org/10.1016/j.desal.2011.06.013
7
D J Belton, O Deschaume, C C Perry. (2012). An overview of the fundamentals of the chemistry of silica with relevance to biosilicification and technological advances. FEBS Journal, 279(10): 1710–1720 https://doi.org/10.1111/j.1742-4658.2012.08531.x
8
J Benecke, J Rozova, M Ernst. (2018). Anti-scale effects of select organic macromolecules on gypsum bulk and surface crystallization during reverse osmosis desalination. Separation and Purification Technology, 198: 68–78 https://doi.org/10.1016/j.seppur.2016.11.068
9
T C Brown, V Mahat, J A Ramirez. (2019). Adaptation to Future Water Shortages in the United States Caused by Population Growth and Climate Change. Earth’s Future, 7(3): 219–234 https://doi.org/10.1029/2018EF001091
10
J A Bush, J Vanneste, E M Gustafson, C A Waechter, D Jassby, C S Turchi, T Y Cath. (2018). Prevention and management of silica scaling in membrane distillation using pH adjustment. Journal of Membrane Science, 554: 366–377 https://doi.org/10.1016/j.memsci.2018.02.059
11
F Butt, F Rahman, U Baduruthamal. (1997). Characterization of foulants by autopsy of RO desalination membranes. Desalination, 114(1): 51–64 https://doi.org/10.1016/S0011-9164(97)00154-9
12
T Cao, J Rolf, Z Wang, C Violet, M Elimelech. (2022). Distinct impacts of natural organic matter and colloidal particles on gypsum crystallization. Water Research, 218: 118500 https://doi.org/10.1016/j.watres.2022.118500
13
G Chen, L Tan, M Xie, Y Liu, Y Lin, W Tan, M Huang. (2020). Direct contact membrane distillation of refining waste stream from precious metal recovery: chemistry of silica and chromium(III) in membrane scaling. Journal of Membrane Science, 598: 117803 https://doi.org/10.1016/j.memsci.2019.117803
14
W Cheng, C Liu, T Tong, R Epsztein, M Sun, R Verduzco, J Ma, M Elimelech. (2018). Selective removal of divalent cations by polyelectrolyte multilayer nanofiltration membrane: role of polyelectrolyte charge, ion size, and ionic strength. Journal of Membrane Science, 559: 98–106 https://doi.org/10.1016/j.memsci.2018.04.052
15
K S Christie, T Horseman, R Wang, C Su, T Tong, S Lin. (2022). Gypsum scaling in membrane distillation: impacts of temperature and vapor flux. Desalination, 525: 115499 https://doi.org/10.1016/j.desal.2021.115499
16
K S S Christie, Y Yin, S Lin, T Tong. (2020). Distinct behaviors between gypsum and silica scaling in membrane distillation. Environmental Science & Technology, 54(1): 568–576 https://doi.org/10.1021/acs.est.9b06023
17
Z Dai, Y Zhao, S Paudyal, X Wang, C Dai, S Ko, W Li, A T Kan, M B Tomson. (2022). Gypsum scale formation and inhibition kinetics with implications in membrane system. Water Research, 225: 119166 https://doi.org/10.1016/j.watres.2022.119166
18
X Du, Z Zhang, K H Carlson, J Lee, T Tong. (2018). Membrane fouling and reusability in membrane distillation of shale oil and gas produced water: effects of membrane surface wettability. Journal of Membrane Science, 567: 199–208 https://doi.org/10.1016/j.memsci.2018.09.036
19
C J Gabelich, W R Chen, T I Yun, B M Coffey, I H Suffet. (2005). The role of dissolved aluminum in silica chemistry for membrane processes. Desalination, 180(1−3): 307–319 https://doi.org/10.1016/j.desal.2005.02.009
20
J Y Gal, J C Bollinger, H Tolosa, N Gache. (1996). Calcium carbonate solubility: a reappraisal of scale formation and inhibition. Talanta, 43(9): 1497–1509 https://doi.org/10.1016/0039-9140(96)01925-X
D L Gallup. (1997). Aluminum silicate scale formation and inhibition: scale characterization and laboratory experiments. Geothermics, 26(4): 483–499 https://doi.org/10.1016/S0375-6505(97)00003-5
23
D L Gallup. (1998). Aluminum silicate scale formation and inhibition: scale solubilities and laboratory and field inhibition tests. Geothermics, 27(4): 485–501 https://doi.org/10.1016/S0375-6505(98)00024-8
24
D Gebauer, A Völkel, H Cölfen. (2008). Stable prenucleation calcium carbonate clusters. Science, 322(5909): 1819–1822 https://doi.org/10.1126/science.1164271
25
P S Goh, W J Lau, M H D Othman, A F Ismail. (2018). Membrane fouling in desalination and its mitigation strategies. Desalination, 425: 130–155 https://doi.org/10.1016/j.desal.2017.10.018
26
S A Greenberg, D Sinclair. (1955). The polymerization of silicic acid. Journal of Physical Chemistry, 59(5): 435–440 https://doi.org/10.1021/j150527a014
27
M Gryta. (2011). The influence of magnetic water treatment on CaCO3 scale formation in membrane distillation process. Separation and Purification Technology, 80(2): 293–299 https://doi.org/10.1016/j.seppur.2011.05.008
28
Y F Guan, M Marcos-Hernández, X Lu, W Cheng, H Q Yu, M Elimelech, D Villagrán. (2019). Silica removal using magnetic iron–aluminum hybrid nanomaterials: measurements, adsorption mechanisms, and implications for silica scaling in reverse osmosis. Environmental Science & Technology, 53(22): 13302–13311 https://doi.org/10.1021/acs.est.9b02883
29
I Gunnarsson, S Arnórsson. (2000). Amorphous silica solubility and the thermodynamic properties of H4SiO4 in the range of 0 to 350 °C at Psat. Geochimica et Cosmochimica Acta, 64(13): 2295–2307 https://doi.org/10.1016/S0016-7037(99)00426-3
30
S Habib, S T Weinman. (2021). A review on the synthesis of fully aromatic polyamide reverse osmosis membranes. Desalination, 502: 114939 https://doi.org/10.1016/j.desal.2021.114939
31
Z Hao, Z Zhao, H Wu, Z Zha, X Tian, L Xie, S Zhao. (2023). Sulfonated reverse osmosis membrane with simultaneous mitigation of silica scaling and organic fouling. Industrial & Engineering Chemistry Research, 62(29): 11646–11655 https://doi.org/10.1021/acs.iecr.3c01519
32
N Hilal, H Al-Zoubi, A Mohammad, N Darwish. (2005). Nanofiltration of highly concentrated salt solutions up to seawater salinity. Desalination, 184(1−3): 315–326 https://doi.org/10.1016/j.desal.2005.02.062
33
F Hingston, M Raupach. (1967). The reaction between monosilicic acid and aluminium hydroxide. I. Kinetics of adsorption of silicic acid by aluminium hydroxide. Soil Research (Collingwood, Vic.), 5(2): 295–309 https://doi.org/10.1071/SR9670295
34
T Horseman, Y Yin, K S S Christie, Z Wang, T Tong, S Lin. (2021). Wetting, scaling, and fouling in membrane distillation: state-of-the-art insights on fundamental mechanisms and mitigation strategies. ACS ES&T Engineering, 1(1): 117–140 https://doi.org/10.1021/acsestengg.0c00025
35
J Hu, H B Harandi, Y Chen, L Zhang, H Yin, T He. (2023). Anisotropic gypsum scaling of corrugated polyvinylidene fluoride hydrophobic membrane in direct contact membrane distillation. Water Research, 244: 120513 https://doi.org/10.1016/j.watres.2023.120513
36
X Huang, C Li, K Zuo, Q Li. (2020). Predominant effect of material surface hydrophobicity on gypsum scale formation. Environmental Science & Technology, 54(23): 15395–15404 https://doi.org/10.1021/acs.est.0c03826
37
G A Hulett, L E Allen. (1902). The solubility of gypsum. Journal of the American Chemical Society, 24(7): 667–679 https://doi.org/10.1021/ja02021a007
38
H Jaramillo, C Boo, S M Hashmi, M Elimelech. (2021). Zwitterionic coating on thin-film composite membranes to delay gypsum scaling in reverse osmosis. Journal of Membrane Science, 618: 118568 https://doi.org/10.1016/j.memsci.2020.118568
39
M Jebur, Y H Chiao, H Matsuyama, S R Wickramasinghe. (2024). Electrocoagulation as a pretreatment for reverse osmosis for potable water from brackish groundwater. Water Resources and Industry, 31: 100243 https://doi.org/10.1016/j.wri.2024.100243
40
J H Jhaveri, Z V P Murthy. (2016). A comprehensive review on anti-fouling nanocomposite membranes for pressure driven membrane separation processes. Desalination, 379: 137–154 https://doi.org/10.1016/j.desal.2015.11.009
41
S X Jiang, Y N Li, B P Ladewig. (2017). A review of reverse osmosis membrane fouling and control strategies. Science of the Total Environment, 595: 567–583 https://doi.org/10.1016/j.scitotenv.2017.03.235
42
M Kaneda, D Dong, Y Chen, X Zhang, Y Xue, V S Bryantsev, M Elimelech, M Zhong. (2024). Molecular design of functional polymers for silica scale inhibition. Environmental Science & Technology, 58(1): 871–882 https://doi.org/10.1021/acs.est.3c06504
43
V Karanikola, C Boo, J Rolf, M Elimelech. (2018). Engineered slippery surface to mitigate gypsum scaling in membrane distillation for treatment of hypersaline industrial wastewaters. Environmental Science & Technology, 52(24): 14362–14370 https://doi.org/10.1021/acs.est.8b04836
44
S Karthika, T K Radhakrishnan, P Kalaichelvi. (2016). A review of classical and nonclassical nucleation theories. Crystal Growth & Design, 16(11): 6663–6681 https://doi.org/10.1021/acs.cgd.6b00794
45
A Kempter, T Gaedt, V Boyko, S Nied, K Hirsch. (2013). New insights into silica scaling on RO-membranes. Desalination and Water Treatment, 51(4−6): 899–907 https://doi.org/10.1080/19443994.2012.715237
46
M M Kim, J Au, A Rahardianto, J Glater, Y Cohen, F W Gerringer, C J Gabelich. (2009). Impact of conventional water treatment coagulants on mineral scaling in RO desalting of brackish water. Industrial & Engineering Chemistry Research, 48(6): 3126–3135 https://doi.org/10.1021/ie800937c
47
N Kröger, R Deutzmann, M Sumper. (1999). Polycationic Peptides from diatom biosilica that direct silica nanosphere formation. Science, 286(5442): 1129–1132 https://doi.org/10.1126/science.286.5442.1129
48
N Kröger, K H Sandhage. (2010). From diatom biomolecules to bioinspired syntheses of silica- and titania-based materials. MRS Bulletin, 35(2): 122–126 https://doi.org/10.1557/mrs2010.631
49
S Lee, Y Kim, S Hong. (2018). Treatment of industrial wastewater produced by desulfurization process in a coal-fired power plant via FO-MD hybrid process. Chemosphere, 210: 44–51 https://doi.org/10.1016/j.chemosphere.2018.06.180
50
D Li, W Lin, R Shao, Y X Shen, X Zhu, X Huang. (2021a). Interaction between humic acid and silica in reverse osmosis membrane fouling process: a spectroscopic and molecular dynamics insight. Water Research, 206: 117773 https://doi.org/10.1016/j.watres.2021.117773
51
X Li, Y Mo, W Qing, S Shao, C Y Tang, J Li. (2019). Membrane-based technologies for lithium recovery from water lithium resources: a review. Journal of Membrane Science, 591: 117317 https://doi.org/10.1016/j.memsci.2019.117317
52
X Li, Z Wang, X Han, Y Liu, C Wang, F Yan, J Wang. (2021b). Regulating the interfacial polymerization process toward high-performance polyamide thin-film composite reverse osmosis and nanofiltration membranes: a review. Journal of Membrane Science, 640: 119765 https://doi.org/10.1016/j.memsci.2021.119765
53
N H Lin, M M Kim, G T Lewis, Y Cohen. (2010). Polymer surface nano-structuring of reverse osmosis membranes for fouling resistance and improved flux performance. Journal of Materials Chemistry, 20(22): 4642–4652 https://doi.org/10.1039/b926918e
54
M G Lioliou, C A Paraskeva, P G Koutsoukos, A C Payatakes. (2006). Calcium sulfate precipitation in the presence of water-soluble polymers. Journal of Colloid and Interface Science, 303(1): 164–170 https://doi.org/10.1016/j.jcis.2006.07.054
55
C Liu, W Wang, B Yang, K Xiao, H Zhao. (2021a). Separation, anti-fouling, and chlorine resistance of the polyamide reverse osmosis membrane: from mechanisms to mitigation strategies. Water Research, 195: 116976 https://doi.org/10.1016/j.watres.2021.116976
56
L Liu, H He, Y Wang, T Tong, X Li, Y Zhang, T He. (2021b). Mitigation of gypsum and silica scaling in membrane distillation by pulse flow operation. Journal of Membrane Science, 624: 119107 https://doi.org/10.1016/j.memsci.2021.119107
57
L Liu, Z Xiao, Y Liu, X Li, H Yin, A Volkov, T He. (2021c). Understanding the fouling/scaling resistance of superhydrophobic/omniphobic membranes in membrane distillation. Desalination, 499: 114864 https://doi.org/10.1016/j.desal.2020.114864
58
Y H Liu, Y Z Bootwala, G G Jang, J K Keum, C M Khor, E M Hoek, D Jassby, C Tsouris, J Mothersbaugh, M C Hatzell. (2022). Electroprecipitation mechanism enabling silica and hardness removal through aluminum-based electrocoagulation. ACS ES&T Engineering, 2(7): 1200–1210 https://doi.org/10.1021/acsestengg.1c00433
59
L Llenas, X Martínez-Lladó, A Yaroshchuk, M Rovira, Pablo J De. (2011). Nanofiltration as pretreatment for scale prevention in seawater reverse osmosis desalination. Desalination and Water Treatment, 36(1−3): 310–318 https://doi.org/10.5004/dwt.2011.2767
60
K G Lu, H Huang. (2019). Dependence of initial silica scaling on the surface physicochemical properties of reverse osmosis membranes during bench-scale brackish water desalination. Water Research, 150: 358–367 https://doi.org/10.1016/j.watres.2018.11.073
61
Q V Ly, Y Hu, J Li, J Cho, J Hur. (2019). Characteristics and influencing factors of organic fouling in forward osmosis operation for wastewater applications: a comprehensive review. Environment International, 129: 164–184 https://doi.org/10.1016/j.envint.2019.05.033
62
J MacAdam, S A Parsons. (2004). Calcium carbonate scale formation and control. Reviews in Environmental Science and Biotechnology, 3(2): 159–169 https://doi.org/10.1007/s11157-004-3849-1
63
M S Mauter, P S Fiske. (2020). Desalination for a circular water economy. Energy & Environmental Science, 13(10): 3180–3184 https://doi.org/10.1039/D0EE01653E
64
M M Mbogoro, M Peruffo, M Adobes-Vidal, E L Field, M A O’Connell, P R Unwin. (2017). Quantitative 3D visualization of the growth of individual gypsum microcrystals: effect of Ca2+∶SO42– ratio on kinetics and crystal morphology. Journal of Physical Chemistry C, 121(23): 12726–12734 https://doi.org/10.1021/acs.jpcc.7b01566
65
P B McMahon, J K Böhlke, K Dahm, D L Parkhurst, D W Anning, J S Stanton. (2016). Chemical considerations for an updated national assessment of brackish groundwater resources. Ground Water, 54(4): 464–475 https://doi.org/10.1111/gwat.12367
66
M M Mekonnen, A Y Hoekstra. (2016). Four billion people facing severe water scarcity. Science Advances, 2(2): e1500323 https://doi.org/10.1126/sciadv.1500323
B Mi, M Elimelech. (2010). Gypsum scaling and cleaning in forward osmosis: measurements and mechanisms. Environmental Science & Technology, 44(6): 2022–2028 https://doi.org/10.1021/es903623r
N A Milne, T O’Reilly, P Sanciolo, E Ostarcevic, M Beighton, K Taylor, M Mullett, A J Tarquin, S R Gray. (2014). Chemistry of silica scale mitigation for RO desalination with particular reference to remote operations. Water Research, 65: 107–133 https://doi.org/10.1016/j.watres.2014.07.010
71
E Neofotistou, K D Demadis. (2004). Use of antiscalants for mitigation of silica (SiO2) fouling and deposition: fundamentals and applications in desalination systems. Desalination, 167: 257–272 https://doi.org/10.1016/j.desal.2004.06.135
72
V A Niemann, M Huck, H G Steinrück, M F Toney, W A Tarpeh, S E Bone. (2023). X-ray absorption spectroscopy reveals mechanisms of calcium and silicon fouling on reverse osmosis membranes used in wastewater reclamation. ACS ES&T Water, 3(8): 2627–2637 https://doi.org/10.1021/acsestwater.3c00144
73
S R Pandey, V Jegatheesan, K Baskaran, L Shu. (2012). Fouling in reverse osmosis (RO) membrane in water recovery from secondary effluent: a review. Reviews in Environmental Science and Biotechnology, 11(2): 125–145 https://doi.org/10.1007/s11157-012-9272-0
74
S Park, M Saavedra, X Liu, T Li, B Anger, T Tong. (2024). A comprehensive study on combined organic fouling and gypsum scaling in reverse osmosis: decoupling surface and bulk phenomena. Journal of Membrane Science, 694: 122399 https://doi.org/10.1016/j.memsci.2023.122399
M Preari, K Spinde, J Lazic, E Brunner, K D Demadis. (2014). Bioinspired insights into silicic acid stabilization mechanisms: the dominant role of polyethylene glycol-induced hydrogen bonding. Journal of the American Chemical Society, 136(11): 4236–4244 https://doi.org/10.1021/ja411822s
77
M Prieto, A Putnis, L Fernandez-Diaz. (1990). Factors controlling the kinetics of crystallization: supersaturation evolution in a porous medium: application to barite crystallization. Geological Magazine, 127(6): 485–495 https://doi.org/10.1017/S0016756800015417
78
N Prihasto, Q F Liu, S H Kim. (2009). Pre-treatment strategies for seawater desalination by reverse osmosis system. Desalination, 249(1): 308–316 https://doi.org/10.1016/j.desal.2008.09.010
79
M Prisciandaro, E Olivieri, A Lancia, D Musmarra. (2006). Gypsum precipitation from an aqueous solution in the presence of nitrilotrimethylenephosphonic acid. Industrial & Engineering Chemistry Research, 45(6): 2070–2076 https://doi.org/10.1021/ie050615a
80
M Prisciandaro, E Olivieri, A Lancia, D Musmarra. (2009). Gypsum scale control by nitrilotrimethylenephosphonic acid. Industrial & Engineering Chemistry Research, 48(24): 10877–10883 https://doi.org/10.1021/ie900253f
81
Y Qi, T Tong, S Zhao, W Zhang, Z Wang, J Wang. (2020). Reverse osmosis membrane with simultaneous fouling- and scaling-resistance based on multilayered metal-phytic acid assembly. Journal of Membrane Science, 601: 117888 https://doi.org/10.1016/j.memsci.2020.117888
82
A N Quay, T Z Tong, S M Hashmi, Y Zhou, S Zhao, M Elimelech. (2018). Combined organic fouling and inorganic scaling in reverse osmosis: role of protein-silica interactions. Environmental Science & Technology, 52(16): 9145–9153 https://doi.org/10.1021/acs.est.8b02194
83
T Rabizadeh, D J Morgan, C L Peacock, L G Benning. (2019). Effectiveness of green additives vs poly(acrylic acid) in inhibiting calcium sulfate dihydrate crystallization. Industrial & Engineering Chemistry Research, 58(4): 1561–1569 https://doi.org/10.1021/acs.iecr.8b02904
84
T Rabizadeh, C L Peacock, L G Benning. (2020). Investigating the effectiveness of phosphonate additives in hindering the calcium sulfate dihydrate scale formation. Industrial & Engineering Chemistry Research, 59(33): 14970–14980 https://doi.org/10.1021/acs.iecr.0c03600
85
A Rahardianto, B C Mccool, Y Cohen. (2008). Reverse osmosis desalting of inland brackish water of high gypsum scaling propensity: kinetics and mitigation of membrane mineral scaling. Environmental Science & Technology, 42(12): 4292–4297 https://doi.org/10.1021/es702463a
86
F Rahman. (2013). Calcium sulfate precipitation studies with scale inhibitors for reverse osmosis desalination. Desalination, 319: 79–84 https://doi.org/10.1016/j.desal.2013.03.027
87
D Rana, T Matsuura. (2010). Surface modifications for antifouling membranes. Chemical Reviews, 110(4): 2448–2471 https://doi.org/10.1021/cr800208y
88
A Razmjou, M Asadnia, E Hosseini, A Habibnejad Korayem, V Chen. (2019). Design principles of ion selective nanostructured membranes for the extraction of lithium ions. Nature Communications, 10(1): 5793 https://doi.org/10.1038/s41467-019-13648-7
89
A G Reiss, I Gavrieli, Y O Rosenberg, I J Reznik, A Luttge, S Emmanuel, J Ganor. (2021). Gypsum precipitation under saline conditions: thermodynamics, kinetics, morphology, and size distribution. Minerals, 11(2): 141 https://doi.org/10.3390/min11020141
90
J Rolf, T Cao, X Huang, C Boo, Q Li, M Elimelech. (2022). Inorganic scaling in membrane desalination: models, mechanisms, and characterization methods. Environmental Science & Technology, 56(12): 7484–7511 https://doi.org/10.1021/acs.est.2c01858
91
R Sheikholeslami, I Al-Mutaz, T Koo, A Young. (2001). Pretreatment and the effect of cations and anions on prevention of silica fouling. Desalination, 139(1−3): 83–95 https://doi.org/10.1016/S0011-9164(01)00297-1
92
H Shemer, N Melki-Dabush, R Semiat. (2019). Removal of silica from brackish water by integrated adsorption/ultrafiltration process. Environmental Science and Pollution Research International, 26(31): 31623–31631 https://doi.org/10.1007/s11356-019-06363-9
93
W Y Shih, A Rahardianto, R W Lee, Y Cohen. (2005). Morphometric characterization of calcium sulfate dihydrate (gypsum) scale on reverse osmosis membranes. Journal of Membrane Science, 252(1): 253–263 https://doi.org/10.1016/j.memsci.2004.12.023
94
K Shimada, T Tarutani. (1980). The kinetics of the polymerization of silicic acid. Bulletin of the Chemical Society of Japan, 53(12): 3488–3491 https://doi.org/10.1246/bcsj.53.3488
95
J Shukla, V P Mohandas, A Kumar. (2008). Effect of pH on the solubility of CaSO4·2H2O in aqueous NaCl solutions and physicochemical solution properties at 35 °C. Journal of Chemical & Engineering Data, 53(12): 2797–2800 https://doi.org/10.1021/je800465f
96
Y So, Y Lee, S Kim, J Lee, C Park. (2023). Role of co-existing ions in the removal of dissolved silica by ceramic nanofiltration membrane. Journal of Water Process Engineering, 53: 103873 https://doi.org/10.1016/j.jwpe.2023.103873
97
T M Stawski, A E S Van Driessche, R Besselink, E H Byrne, P Raiteri, J D Gale, L G Benning. (2019). The structure of CaSO4 nanorods: the precursor of gypsum. Journal of Physical Chemistry C, 123(37): 23151–23158 https://doi.org/10.1021/acs.jpcc.9b04268
98
T M Stawski, A E S Van Driessche, M Ossorio, J Diego Rodriguez-Blanco, R Besselink, L G Benning. (2016). Formation of calcium sulfate through the aggregation of sub-3 nanometre primary species. Nature Communications, 7(1): 11177 https://doi.org/10.1038/ncomms11177
99
C Su, T Horseman, H Cao, K Christie, Y Li, S Lin. (2019). Robust superhydrophobic membrane for membrane distillation with excellent scaling resistance. Environmental Science & Technology, 53(20): 11801–11809 https://doi.org/10.1021/acs.est.9b04362
100
TetraTech(2011). Managing Water in the West: Analysis of Water from Four Wells at the Brackish Groundwater National Desalination Research Facility: Tech. Rep. Washington, DC: US Department of the Interior Bureau of Reclamation
101
L D Tijing, Y C Woo, J S Choi, S Lee, S H Kim, H K Shon. (2015). Fouling and its control in membrane distillation: a review. Journal of Membrane Science, 475: 215–244 https://doi.org/10.1016/j.memsci.2014.09.042
102
C Tokoro, S Suzuki, D Haraguchi, S Izawa. (2014). Silicate removal in aluminum hydroxide co-precipitation process. Materials (Basel), 7(2): 1084–1096 https://doi.org/10.3390/ma7021084
103
T Tong, X Liu, T Li, S Park, B Anger. (2023). A tale of two foulants: the coupling of organic fouling and mineral scaling in membrane desalination. Environmental Science & Technology, 57(18): 7129–7149 https://doi.org/10.1021/acs.est.3c00414
104
T Tong, A F Wallace, S Zhao, Z Wang. (2019a). Mineral scaling in membrane desalination: mechanisms, mitigation strategies, and feasibility of scaling-resistant membranes. Journal of Membrane Science, 579: 52–69 https://doi.org/10.1016/j.memsci.2019.02.049
105
T Tong, S Zhao, C Boo, S M Hashmi, M Elimelech. (2017). Relating Silica scaling in reverse osmosis to membrane surface properties. Environmental Science & Technology, 51(8): 4396–4406 https://doi.org/10.1021/acs.est.6b06411
106
T Z Tong, M Elimelech. (2016). The global rise of zero liquid discharge for wastewater management: drivers, technologies, and future directions. Environmental Science & Technology, 50(13): 6846–6855 https://doi.org/10.1021/acs.est.6b01000
107
T Z Tong, A F Wallace, S Zhao, Z Wang. (2019b). Mineral scaling in membrane desalination: mechanisms, mitigation strategies, and feasibility of scaling-resistant membranes. Journal of Membrane Science, 579: 52–69 https://doi.org/10.1016/j.memsci.2019.02.049
108
M Uchymiak, E Lyster, J Glater, Y Cohen. (2008). Kinetics of gypsum crystal growth on a reverse osmosis membrane. Journal of Membrane Science, 314(1): 163–172 https://doi.org/10.1016/j.memsci.2008.01.041
109
Driessche A E S Van, L G Benning, J D Rodriguez-Blanco, M Ossorio, P Bots, J M García-Ruiz. (2012). The role and implications of bassanite as a stable precursor phase to gypsum precipitation. Science, 336(6077): 69–72 https://doi.org/10.1126/science.1215648
110
T Vermeulen, B W Tleimat, G Klein. (1983). Ion-exchange pretreatment for scale prevention in desalting systems. Desalination, 47(1−3): 149–159 https://doi.org/10.1016/0011-9164(83)87068-4
111
A F Wallace, J J Deyoreo, P M Dove. (2009). Kinetics of silica nucleation on carboxyl- and amine-terminated surfaces: insights for biomineralization. Journal of the American Chemical Society, 131(14): 5244–5250 https://doi.org/10.1021/ja809486b
112
S Wang, X Huang, M Elimelech. (2020a). Complexation between dissolved silica and alginate molecules: implications for reverse osmosis membrane fouling. Journal of Membrane Science, 605: 118109 https://doi.org/10.1016/j.memsci.2020.118109
113
S Wang, C Mu, K Xiao, X Zhu, X Huang. (2020b). Surface charge regulation of reverse osmosis membrane for anti-silica and organic fouling. Science of the Total Environment, 715: 137013 https://doi.org/10.1016/j.scitotenv.2020.137013
114
M P C Weijnen, G M Van Rosmalen. (1985). The influence of various polyelectrolytes on the precipitation of gypsum. Desalination, 54: 239–261 https://doi.org/10.1016/0011-9164(85)80021-7
115
Z Xiao, Z Li, H Guo, Y Liu, Y Wang, H Yin, X Li, J Song, L D Nghiem, T He. (2019a). Scaling mitigation in membrane distillation: from superhydrophobic to slippery. Desalination, 466: 36–43 https://doi.org/10.1016/j.desal.2019.05.006
116
Z Xiao, R Zheng, Y Liu, H He, X Yuan, Y Ji, D Li, H Yin, Y Zhang, X M Li. et al.. (2019b). Slippery for scaling resistance in membrane distillation: a novel porous micropillared superhydrophobic surface. Water Research, 155: 152–161 https://doi.org/10.1016/j.watres.2019.01.036
117
M Xie, S R Gray. (2016). Gypsum scaling in forward osmosis: role of membrane surface chemistry. Journal of Membrane Science, 513: 250–259 https://doi.org/10.1016/j.memsci.2016.04.022
N Yang (2005). Physical conditioning for scale prevention during desalination by reverse osmosis. Thesis for the Master Degree. Göteborg: Chalmers University of Technology
120
Y Yao, X Ge, Y Yin, R Minjarez, T Tong. (2023). Antiscalants for mitigating silica scaling in membrane desalination: effects of molecular structure and membrane process. Water Research, 246: 120701 https://doi.org/10.1016/j.watres.2023.120701
121
Y Yin, N Jeong, R Minjarez, C A Robbins, K H Carlson, T Tong. (2021). Contrasting behaviors between gypsum and silica scaling in the presence of antiscalants during membrane distillation. Environmental Science & Technology, 55(8): 5335–5346 https://doi.org/10.1021/acs.est.0c07190
122
Y Yin, N Jeong, T Tong. (2020). The effects of membrane surface wettability on pore wetting and scaling reversibility associated with mineral scaling in membrane distillation. Journal of Membrane Science, 614: 118503 https://doi.org/10.1016/j.memsci.2020.118503
123
Y Yin, S Kalam, J L Livingston, R Minjarez, J Lee, S Lin, T Tong. (2022a). The use of anti-scalants in gypsum scaling mitigation: comparison with membrane surface modification and efficiency in combined reverse osmosis and membrane distillation. Journal of Membrane Science, 643: 120077 https://doi.org/10.1016/j.memsci.2021.120077
124
Y Yin, T Li, K Zuo, X Liu, S Lin, Y Yao, T Tong. (2022b). Which surface is more scaling resistant? A closer look at nucleation theories for heterogeneous gypsum nucleation in aqueous solutions. Environmental Science & Technology, 56(22): 16315–16324 https://doi.org/10.1021/acs.est.2c06560
125
Y Yin, W Wang, A K Kota, S Zhao, T Tong. (2019). Elucidating mechanisms of silica scaling in membrane distillation: effects of membrane surface wettability. Environmental Science. Water Research & Technology, 5(11): 2004–2014 https://doi.org/10.1039/C9EW00626E
126
T Yokoyama, T Nakazato, T Tarutani. (1980). Polymerization of silicic acid adsorbed on iron(III) hydroxide. Bulletin of the Chemical Society of Japan, 53(4): 850–853 https://doi.org/10.1246/bcsj.53.850
L Zhang, R Zhang, M Ji, Y Lu, Y Zhu, J Jin. (2021). Polyamide nanofiltration membrane with high mono/divalent salt selectivity via pre-diffusion interfacial polymerization. Journal of Membrane Science, 636: 119478 https://doi.org/10.1016/j.memsci.2021.119478
129
R Zhang, Y Liu, M He, Y Su, X Zhao, M Elimelech, Z Jiang. (2016). Antifouling membranes for sustainable water purification: strategies and mechanisms. Chemical Society Reviews, 45(21): 5888–5924 https://doi.org/10.1039/C5CS00579E
130
W Zhang, X Zhang. (2021). Effective inhibition of gypsum using an ion-ion selective nanofiltration membrane pretreatment process for seawater desalination. Journal of Membrane Science, 632: 119358 https://doi.org/10.1016/j.memsci.2021.119358
131
X Zhang, M Lu, M A M Idrus, C Crombie, V Jegatheesan. (2019). Performance of precipitation and electrocoagulation as pretreatment of silica removal in brackish water and seawater. Process Safety and Environmental Protection, 126: 18–24 https://doi.org/10.1016/j.psep.2019.03.024
132
S Zhao, Z Zhao, X Zhang, Z Zha, T Tong, R Wang, Z Wang. (2024). Polyamide membranes with tunable surface charge induced by dipole–dipole interaction for selective ion separation. Environmental Science & Technology, 58(11): 5174–5185 https://doi.org/10.1021/acs.est.3c10195
133
Y Zhao, T Tong, X Wang, S Lin, E M Reid, Y Chen. (2021). Differentiating solutes with precise nanofiltration for next generation environmental separations: a review. Environmental Science & Technology, 55(3): 1359–1376 https://doi.org/10.1021/acs.est.0c04593
134
Z Zhu, L Zhong, T Horseman, Z Liu, G Zeng, Z Li, S Lin, W Wang. (2021). Superhydrophobic-omniphobic membrane with anti-deformable pores for membrane distillation with excellent wetting resistance. Journal of Membrane Science, 620: 118768 https://doi.org/10.1016/j.memsci.2020.118768