CO2 Nanobubbles as an Emerging EOR–CCUS Technology: Comparative Review of Laboratory Studies, Underlying Mechanisms, and Preliminary Assessment of CO2 Storage Potential
Abstract
1. Introduction
2. Methodology
2.1. Review Framework for CO2-Nanobubble-Based EOR Studies
2.2. Framework for Quantifying CO2 Storage Potential in CO2-NB EOR Projects
3. Comparative Analysis of Experimental Papers
4. Proposed Mechanisms of CO2-NBs in Oil Reservoirs
4.1. Mechanisms Primarily Supported by CO2-NB EOR Experiments
4.1.1. Oil Swelling and Viscosity Reduction
4.1.2. Interfacial Tension Reduction and Wettability Alteration
4.2. Additional Proposed Mechanisms from Broader NB and MB Studies
4.2.1. Oil Flotation and Suppression of Gravity Segregation
4.2.2. Induced Waves
4.2.3. Rock Dissolution and Drag Force Reduction
5. Assessment of CO2 Storage Potential During NB-Based EOR Injection
5.1. Theoretical Assessment of the Free-NB Percentage to the Total CO2-NB Solution
5.2. Probabilistic Monte Carlo Study to Assess Storage Capacity of CO2-NB
6. Conclusions
Limitations of the Study
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| NB(s) | Nanobubble(s) |
| MB(s) | Microbubble(s) |
| MNBs | Micro-nano bubbles |
| EOR | Enhanced oil recovery |
| IOR | Improved oil recovery |
| CCUS | Carbon capture, utilization, and storage |
| HnP | Huff-n-puff |
| GHG(s) | Greenhouse gas(es) |
| Gt | Gigatons |
| NPs | Nanoparticles |
| WAG | Water-alternating-gas |
| CO2-eq | CO2 equivalent |
| CO2-RB | CO2–reservoir brine |
| IFT | Interfacial tension |
| MNC | Minnesota Northern Cream |
| SNB(s) | Surface nanobubble(s) |
| OOIP | Original oil in place |
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| Reference | Experiment Type | Generation Technique of NBs | Rock Type | Oil Type | Pressure (psi) | Temp. (°F) | Additional Recovery (%) |
|---|---|---|---|---|---|---|---|
| Lawal et al. (2024) [15] | Core Flooding | Porous membrane co-injection | Berea Sandstone | Dead oil | 2215 | 72 | ≈16 |
| Lawal et al. (2024) [15] | Huff-n-Puff | Porous membrane co-injection | Kentucky Sandstone | Live oil | 3515–4515 | 216 | ≈10 (Annular) ≈14 (Artificial) ≈11 (Combined) |
| Cai et al. (2024) [17] | Core Flooding | NBs generator | Sandstone | Crude oil | ≈500 | Not reported | ≈18 (vs. CO2) ≈5 (vs. WAG) |
| Zhu et al. (2025) [30] | Core Flooding | Co-injection by Porous disk | Conglomerate Sandstone | Crude oil | ≈2200 | 93 | ≈9 |
| Sun et al. (2025) [27] | Core Flooding | MNB generator | Shale | Crude oil | ≈300 | 158 | Not reported |
| Saleh et al. (2025) [29] | Core Flooding | Porous plate and sonication | Berea Sandstone | Mineral oil | 200 | Not reported | ≈9 |
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Shahin, A.; Hajiyev, E.; Elnaggar, H.; Eissa, B.; Abdellatif, M.; Baig, A.R.; Watson, M. CO2 Nanobubbles as an Emerging EOR–CCUS Technology: Comparative Review of Laboratory Studies, Underlying Mechanisms, and Preliminary Assessment of CO2 Storage Potential. Energies 2026, 19, 2323. https://doi.org/10.3390/en19102323
Shahin A, Hajiyev E, Elnaggar H, Eissa B, Abdellatif M, Baig AR, Watson M. CO2 Nanobubbles as an Emerging EOR–CCUS Technology: Comparative Review of Laboratory Studies, Underlying Mechanisms, and Preliminary Assessment of CO2 Storage Potential. Energies. 2026; 19(10):2323. https://doi.org/10.3390/en19102323
Chicago/Turabian StyleShahin, Abdulrahman, Elvin Hajiyev, Hossameldeen Elnaggar, Bassel Eissa, Mahmoud Abdellatif, Abdul Rehman Baig, and Marshall Watson. 2026. "CO2 Nanobubbles as an Emerging EOR–CCUS Technology: Comparative Review of Laboratory Studies, Underlying Mechanisms, and Preliminary Assessment of CO2 Storage Potential" Energies 19, no. 10: 2323. https://doi.org/10.3390/en19102323
APA StyleShahin, A., Hajiyev, E., Elnaggar, H., Eissa, B., Abdellatif, M., Baig, A. R., & Watson, M. (2026). CO2 Nanobubbles as an Emerging EOR–CCUS Technology: Comparative Review of Laboratory Studies, Underlying Mechanisms, and Preliminary Assessment of CO2 Storage Potential. Energies, 19(10), 2323. https://doi.org/10.3390/en19102323

