Skip to main content

Leakage of CO2 from geological storage and its impacts on fresh soil–water systems: a review

Abstract

Leakage of CO2 from the geological storage is a serious issue for the sustainability of the receiving fresh soil–water systems. Subsurface water quality issues are no longer related to one type of pollution in many regions around the globe. Thus, an effort has been made to review studies performed to investigate supercritical CO2 (scCO2) and CO2 enrich brine migration and it's leakage from geological storage formations. Further, the study also reviewed it's impacts on fresh soil–water systems, soil microbes, and vegetation. The first part of the study discussed scCO2/CO2 enrich brine migration and its leakage from storage formations along with it's impact on pore dynamics of hydrological regimes. Later, a state-of-the-art literature survey has been performed to understand the role of CO2–brine leakage on groundwater dynamics and its quality along with soil microbes and plants. It is observed in the literature survey that most of the studies on CO2–brine migration in storage formations reported significant CO2–brine leakage due to over-pressurization through wells (injections and abandoned), fracture, and faults during CO2 injection. Thus, changes in the groundwater flow and water table dynamics can be the first impact of the CO2–brine leakage. Subsequently, three major alterations may also occur—(i) drop in pH of subsurface water, (ii) enhancement of organic compounds, and (iii) mobilization of metals and metalloids. Geochemical alteration depends on the amount of CO2 leaked and interactions with host rocks. Therefore, such alteration may significantly affect soil microbial dynamics and vegetation in and around CO2 leakage sites. In-depth analysis of the available literature fortifies that a proper subsurface characterization along with the bio-geochemical analysis is extremely important and should be mandatory to predict the more accurate risk of CO2 capture and storage activities on soil–water systems.

This is a preview of subscription content, access via your institution.

Fig. 1
Fig. 2
Fig. 3
Fig. 4

Data availability

No data, models, or code were generated or used during the study (e.g., opinion or data-less paper).

References

  • Al-Traboulsi M, Sjögersten S, Colls J, Steven M, Black C (2012) Potential impact of CO2 leakage from carbon capture and storage systems on field bean (Vicia faba). Physiol Plant 146(3):261–271

    CAS  Google Scholar 

  • Amonette JE, Johnson TA, Spencer CF, Zhong L, Szecsody JE, Vermeul VR (2014) Geochemical monitoring considerations for the FutureGen 2.0 project. Energy Procedia 63:4095–4111

    CAS  Google Scholar 

  • Amonette JE, Zhong L, Darrah TH, Grove BS, Cole DR (2019) Noble and major gases released from rock core materials as intrinsic tracers for detecting carbon dioxide leakage–laboratory evaluation. Int J Greenhouse Gas Control 89:76–88

  • André L, Audigane P, Azaroual M, Menjoz A (2007) Numerical modeling of fluid–rock chemical interactions at the supercritical CO2–liquid interface during CO2 injection into a carbonate reservoir, the Dogger aquifer (Paris Basin, France). Energy Convers Manag 48(6):1782–1797

    Google Scholar 

  • Atchley AL, Maxwell RM, Navarre-Sitchler AK (2013) Human health risk assessment of CO2 leakage into overlying aquifers using a stochastic, geochemical reactive transport approach. Environ Sci Technol 47(11):5954–5962

    CAS  Google Scholar 

  • Bacci G, Korre A, Durucan S (2011) Experimental investigation into salt precipitation during CO2 injection in saline aquifers. Energy Procedia 4:4450–4456

    CAS  Google Scholar 

  • Bacci G, Durucan S, Korre A (2013) Experimental and numerical study of the effects of halite scaling on injectivity and seal performance during CO2 injection in saline aquifers. Energy Procedia 37:3275–3282

    CAS  Google Scholar 

  • Barrio M, Bakk A, Grimstad AA, Querendez E, Jones DG, Kuras O et al (2014) CO2 migration monitoring methodology in the shallow subsurface: lessons learned from the CO2FIELDLAB project. Energy Procedia 51:65–74

    CAS  Google Scholar 

  • Beaubien SE, Ciotoli G, Coombs P, Dictor MC, Krüger M, Lombardi S et al (2008) The impact of a naturally occurring CO2 gas vent on the shallow ecosystem and soil chemistry of a Mediterranean pasture (Latera, Italy). Int J Greenhouse Gas Control 2(3):373–387

  • Bergman PD, Winter EM (1995) Disposal of carbon dioxide in aquifers in the US. Energy Convers Manag 36(6–9):523–526

    CAS  Google Scholar 

  • Birkholzer JT, Zhou Q (2009) Basin-scale hydrogeologic impacts of CO2 storage: capacity and regulatory implications. Int J Greenhouse Gas Control 3(6):745–756

  • Birkholzer J, Apps J, Zheng L, Zhang Y, Xu T, Tsang C-F (2008) Research project on CO2 geological storage and groundwater resources: large-scale hydrogeological evaluation and impact on groundwater systems, annual report October 1, 2007 to September 30, 2008. Report. Lawrence Berkeley National Laboratory, Berkeley

    Google Scholar 

  • Blackford J, Stahl H, Bull JM, Bergès BJ, Cevatoglu M, Lichtschlag A et al (2014) Detection and impacts of leakage from sub-seafloor deep geological carbon dioxide storage. Nat Clim Chang 4(11):1011

    CAS  Google Scholar 

  • Bricker SH, Barkwith AKAP, MacDonald AM, Hughes AG, Smith M (2012) Effects of CO2 injection on shallow groundwater resources: a hypothetical case study in the Sherwood sandstone aquifer, UK. Int J Greenhouse Gas Control 11:337–348

  • Bruant R, Guswa A, Celia M, Peters C (2002) Safe storage of CO~ 2 in deep saline aquifers. Environ Sci Technol, Washington DC 36(11):240A–245A

    CAS  Google Scholar 

  • Burant A, Lowry GV, Karamalidis AK (2012) Partitioning behavior of organic contaminants in carbon storage environments: a critical review. Environ Sci Technol 47(1):37–54

    Google Scholar 

  • Cahill AG, Jakobsen R (2013) Hydro-geochemical impact of CO2 leakage from geological storage on shallow potable aquifers: a field scale pilot experiment. Int J Greenhouse Gas Control 19:678–688

  • Cahill AG, Marker P, Jakobsen R (2014) Hydrogeochemical and mineralogical effects of sustained CO2 contamination in a shallow sandy aquifer: a field-scale controlled release experiment. Water Resour Res 50(2):1735–1755

    CAS  Google Scholar 

  • Carroll S, Hao Y, Aines R (2009) Transport and detection of carbon dioxide in dilute aquifers. Energy Procedia 1(1):2111–2118

    CAS  Google Scholar 

  • Chen F, Yang Y, Ma Y, Hou H, Zhang S, Ma J (2016) Effects of CO2 leakage on soil bacterial communities from simulated CO 2-EOR areas. Environ Sci: Processes Impacts 18(5):547–554

    CAS  Google Scholar 

  • Chen F, Zhang W, Ma J, Yang Y, Zhang S, Chen R (2017) Experimental study on the effects of underground CO2 leakage on soil microbial consortia. Int J Greenhouse Gas Control 63:241–248

  • Choi BY (2019) Potential impact of leaking CO2 gas and CO2-rich fluids on shallow groundwater quality in the Chungcheong region (South Korea): a hydrogeochemical approach. Int J Greenhouse Gas Control 84:13–28

  • Cihan A, Birkholzer JT, Bianchi M (2015) Optimal well placement and brine extraction for pressure management during CO2 sequestration. Int J Greenhouse Gas Control 42:175–187

  • Cui G, Zhang L, Tan C, Ren S, Zhuang Y, Enechukwu C (2017) Injection of supercritical CO2 for geothermal exploitation from sandstone and carbonate reservoirs: CO2–water–rock interactions and their effects. J CO2 Util 20:113–128

  • de Miera LES, Arroyo P, de Luis Calabuig E, Falagán J, Ansola G (2014) High-throughput sequencing of 16S RNA genes of soil bacterial communities from a naturally occurring CO2 gas vent. Int J Greenhouse Gas Control 29:176–184

  • Derakhshan-Nejad Z, Sun J, Yun ST, Lee G (2019) Potential CO2 intrusion in near-surface environments: a review of current research approaches to geochemical processes. Environ Geochem Health:1–26

  • Druckenmiller ML, Maroto-Valer MM (2005) Carbon sequestration using brine of adjusted pH to form mineral carbonates. Fuel Process Technol 86(14–15):1599–1614

    CAS  Google Scholar 

  • Duan B, Zhang Y, Xu G, Chen J, Paquette A, Peng S (2015) Long-term responses of plant growth, soil microbial communities and soil enzyme activities to elevated CO2 and neighbouring plants. Agric For Meteorol 213:91–101

    Google Scholar 

  • Famiglietti JS (2014) The global groundwater crisis. Nat Clim Chang 4(11):945

    Google Scholar 

  • Farquhar SM, Pearce JK, Dawson GKW, Golab A, Sommacal S, Kirste D et al (2015) A fresh approach to investigating CO2 storage: experimental CO2–water–rock interactions in a low-salinity reservoir system. Chem Geol 399:98–122

    CAS  Google Scholar 

  • Feitz A, Jenkins C, Schacht U, McGrath A, Berko H, Schroder I, Noble R, Kuske T, George S, Heath C, Zegelin S, Curnow S, Zhang H, Sirault X, Jimenez-Berni J, Hortle A (2014) An assessment of near surface CO2 leakage detection techniques under Australian conditions. Energy Procedia 63:3891–3906

    CAS  Google Scholar 

  • Figueroa JD, Fout T, Plasynski S, McIlvried H, Srivastava RD (2008) Advances in CO2 capture technology—the US Department of Energy’s Carbon Sequestration Program. Int J Greenhouse Gas Control 2(1):9–20

  • Flude S, Johnson G, Gilfillan SM, Haszeldine RS (2016) Inherent tracers for carbon capture and storage in sedimentary formations: composition and applications. Environ Sci Technol 50(15):7939–7955

    CAS  Google Scholar 

  • Frerichs J, Oppermann BI, Gwosdz S, Möller I, Herrmann M, Krüger M (2013) Microbial community changes at a terrestrial volcanic CO2 vent induced by soil acidification and anaerobic microhabitats within the soil column. FEMS Microbiol Ecol 84(1):60–74

    CAS  Google Scholar 

  • Fritz B, Jacquot E, Jacquemont B, Baldeyrou-Bailly A, Rosener M, Vidal O (2010) Geochemical modelling of fluid–rock interactions in the context of the Soultz-sous-Forêts geothermal system. Compt Rendus Geosci 342(7–8):653–667

    CAS  Google Scholar 

  • Gal F, Brach M, Braibant G, Bény C, Michel K (2012) What can be learned from natural analogue studies in view of CO2 leakage issues in carbon capture and storage applications? Geochemical case study of Sainte-Marguerite area (French Massif Central). Int J Greenhouse Gas Control 10:470–485

  • Gal F, Proust E, Humez P, Braibant G, Brach M, Koch F et al (2013) Inducing a CO2 leak into a shallow aquifer (CO2FieldLab EUROGIA+ project): monitoring the CO2 plume in groundwaters. Energy Procedia 37:3583–3593

    CAS  Google Scholar 

  • Gal F, Michel K, Pokryszka Z, Lafortune S, Garcia B, Rouchon V et al (2014) Study of the environmental variability of gaseous emanations over a CO2 injection pilot—application to the French Pyrenean foreland. Int J Greenhouse Gas Control 21:177–190

  • Gasparini A, Credoz A, Grandia F, Garcia DA, Bruno J (2015) Experimental and numerical modeling of CO2 leakage in the vadose zone. Greenhouse Gases Sci Technol 5(6):732–755

  • Gaus I (2010) Role and impact of CO2–rock interactions during CO2 storage in sedimentary rocks. Int J Greenhouse Gas Control 4(1):73–89

  • Guodong CUI, Shaoran REN, Zhang L, Bo REN, Zhuang Y, Xin LI et al (2016) Formation water evaporation induced salt precipitation and its effect on gas production in high temperature natural gas reservoirs. Pet Explor Dev 43(5):815–824

    Google Scholar 

  • Gupta PK (2020) Pollution Load on Indian Soil-Water Systems and Associated Health Hazards: A Review. J Environ Eng https://doi.org/10.1061/(ASCE)EE.1943-7870.0001693

  • Guyant E, Han WS, Kim KY, Park MH, Kim BY (2015) Salt precipitation and CO2/brine flow distribution under different injection well completions. Int J Greenhouse Gas Control 37:299–310

  • Harvey OR, Qafoku NP, Cantrell KJ, Lee G, Amonette JE, Brown CF (2012) Geochemical implications of gas leakage associated with geologic CO2 storage: a qualitative review. Environ Sci Technol 47(1):23–36

    Google Scholar 

  • He W, Yoo G, Moonis M, Kim Y, Chen X (2019) Impact assessment of high soil CO2 on plant growth and soil environment: a greenhouse study. PeerJ 7:e6311

    Google Scholar 

  • Herzog HJ (2001) Peer reviewed: what future for carbon capture and sequestration? Environ Sci Technol 35:148A–153A

    CAS  Google Scholar 

  • Hu L, Bayer P, Brauchler R (2016) Detection of carbon dioxide leakage during injection in deep saline formations by pressure tomography. Water Resour Res 52(7):5676–5686

    CAS  Google Scholar 

  • Humez P, Lagneau V, Lions J, Negrel P (2013) Assessing the potential consequences of CO2 leakage to freshwater resources: a batch-reaction experiment towards an isotopic tracing tool. Appl Geochem 30:178–190

    CAS  Google Scholar 

  • Jenkins C, Chadwick A, Hovorka SD (2015) The state of the art in monitoring and verification—ten years on. Int J Greenhouse Gas Control 40:312–349

  • Jin M, Ribeiro A, Mackay E, Guimarães L, Bagudu U (2016) Geochemical modelling of formation damage risk during CO2 injection in saline aquifers. J Nat Gas Sci Eng 35:703–719

    CAS  Google Scholar 

  • Jones DG, Beaubien SE, Blackford JC, Foekema EM, Lions J, De Vittor C et al (2015) Developments since 2005 in understanding potential environmental impacts of CO2 leakage from geological storage. Int J Greenhouse Gas Control 40:350–377

  • Ju Y, Beaubien SE, Lee SS, Kaown D, Hahm D, Lee S et al (2019) Application of natural and artificial tracers to constrain CO2 leakage and degassing in the K-COSEM site, South Korea. Int J Greenhouse Gas Control 86:211–225

  • Kharaka YK, Cole DR, Hovorka SD, Gunter WD, Knauss KG, Freifeld BM (2006) Gas-water-rock interactions in Frio Formation following CO2 injection: implications for the storage of greenhouse gases in sedimentary basins. Geology 34(7):577–580

    CAS  Google Scholar 

  • Kharaka YK, Thordsen JJ, Hovorka SD, Nance HS, Cole DR, Phelps TJ, Knauss KG (2009) Potential environmental issues of CO2 storage in deep saline aquifers: geochemical results from the Frio-I Brine Pilot test, Texas, USA. Appl Geochem 24(6):1106–1112

    CAS  Google Scholar 

  • Kharaka YK, Thordsen JJ, Kakouros E, Ambats G, Herkelrath WN, Beers SR et al (2010) Changes in the chemistry of shallow groundwater related to the 2008 injection of CO2 at the ZERT field site, Bozeman, Montana. Environ Earth Sci 60(2):273–284

  • Kharaka Y, Thordsen J, Abedini A, Beers S, Thomas B (2017) Changes in the chemistry of groundwater reacted with CO2: comparison of laboratory results with the ZERT field pilot. Procedia Earth Planet Sci 17:241–244

  • Kim M, Sell A, Sinton D (2013) Aquifer-on-a-Chip: understanding pore-scale salt precipitation dynamics during CO2 sequestration. Lab Chip 13(13):2508–2518

  • Kim YJ, He W, Ko D, Chung H, Yoo G (2017) Increased N2O emission by inhibited plant growth in the CO2 leaked soil environment: simulation of CO2 leakage from carbon capture and storage (CCS) site. Sci Total Environ 607:1278–1285

    Google Scholar 

  • Kim CY, Han WS, Park E, Jeong J, Xu T (2018) CO2 leakage-induced contamination in shallow potable aquifer and associated health risk assessment. Geofluids 2018:1–19

    Google Scholar 

  • Kim J, Yu S, Yun ST, Kim KH, Kim JH, Shinn YJ, Chae G (2019) CO2 leakage detection in the near-surface above natural CO2-rich water aquifer using soil gas monitoring. Int J Greenhouse Gas Control 88:261–271

  • Kirsch K, Navarre-Sitchler AK, Wunsch A, McCray JE (2014) Metal release from sandstones under experimentally and numerically simulated CO2 leakage conditions. Environ Sci Technol 48(3):1436–1442

    CAS  Google Scholar 

  • Klusman RW (2003) Rate measurements and detection of gas microseepage to the atmosphere from an enhanced oil recovery/sequestration project, Rangely, Colorado, USA. Appl Geochem 18(12):1825–1838

    CAS  Google Scholar 

  • Klusman RW (2011) Comparison of surface and near-surface geochemical methods for detection of gas microseepage from carbon dioxide sequestration. Int J Greenhouse Gas Control 5(6):1369–1392

  • Krüger M, West J, Frerichs J, Oppermann B, Dictor MC, Jouliand C et al (2009) Ecosystem effects of elevated CO2 concentrations on microbial populations at a terrestrial CO2 vent at Laacher See, Germany. Energy Procedia 1(1):1933–1939

    Google Scholar 

  • Krüger M, Jones D, Frerichs J, Oppermann BI, West J, Coombs P et al (2011) Effects of elevated CO2 concentrations on the vegetation and microbial populations at a terrestrial CO2 vent at Laacher See, Germany. Int J Greenhouse Gas Control 5(4):1093–1098

  • Lassen RN, Sonnenborg TO, Jensen KH, Looms MC (2015) Monitoring CO2 gas-phase migration in a shallow sand aquifer using cross-borehole ground penetrating radar. Int J Greenhouse Gas Control 37:287–298

  • Lee KK, Lee SH, Yun ST, Jeen SW (2016) Shallow groundwater system monitoring on controlled CO 2 release sites: a review on field experimental methods and efforts for CO 2 leakage detection. Geosci J 20(4):569–583

    CAS  Google Scholar 

  • Lewicki JL, Birkholzer J, Tsang CF (2007) Natural and industrial analogues for leakage of CO 2 from storage reservoirs: identification of features, events, and processes and lessons learned. Environ Geol 52(3):457

    CAS  Google Scholar 

  • Lions J, Devau N, De Lary L, Dupraz S, Parmentier M, Gombert P, Dictor MC (2014) Potential impacts of leakage from CO2 geological storage on geochemical processes controlling fresh groundwater quality: a review. Int J Greenhouse Gas Control 22:165–175

  • Little MG, Jackson RB (2010) Potential impacts of leakage from deep CO2 geosequestration on overlying freshwater aquifers. Environ Sci Technol 44(23):9225–9232

    CAS  Google Scholar 

  • Liu D, Agarwal R, Li Y, Yang S (2019) Reactive transport modeling of mineral carbonation in unaltered and altered basalts during CO2 sequestration. Int J Greenhouse Gas Control 85:109–120

  • Lu J, Partin JW, Hovorka SD, Wong C (2010) Potential risks to freshwater resources as a result of leakage from CO 2 geological storage: a batch-reaction experiment. Environ Earth Sci 60(2):335–348

    CAS  Google Scholar 

  • Ma J, Zhang W, Zhang S, Zhu Q, Feng Q, Chen F (2017) Short-term effects of CO2 leakage on the soil bacterial community in a simulated gas leakage scenario. PeerJ 5:e4024

    Google Scholar 

  • Male EJ, Pickles WL, Silver EA, Hoffmann GD, Lewicki J, Apple M et al (2010) Using hyperspectral plant signatures for CO 2 leak detection during the 2008 ZERT CO 2 sequestration field experiment in Bozeman, Montana. Environ Earth Sci 60(2):251–261

    CAS  Google Scholar 

  • McIntosh JC, Hendry MJ, Ballentine C, Haszeldine RS, Mayer B, Etiope G et al (2018) A critical review of state-of-the-art and emerging approaches to identify fracking-derived gases and associated contaminants in aquifers. Environ Sci Technol 53(3):1063–1077

    Google Scholar 

  • McMahon PB, Chapelle FH (2008) Redox processes and water quality of selected principal aquifer systems. Groundwater 46(2):259–271

    CAS  Google Scholar 

  • Michael K, Golab A, Shulakova V, Ennis-King J, Allinson G, Sharma S, Aiken T (2010) Geological storage of CO2 in saline aquifers—a review of the experience from existing storage operations. Int J Greenhouse Gas Control 4(4):659–667

  • Miri R, Hellevang H (2016) Salt precipitation during CO2 storage—a review. Int J Greenhouse Gas Control 51:136–147

  • Molari M, Guilini K, Lott C, Weber M, de Beer D, Meyer S et al (2018) CO2 leakage alters biogeochemical and ecological functions of submarine sands. Sci Adv 4(2):eaao2040

    Google Scholar 

  • Moni C, Rasse DP (2014) Detection of simulated leaks from geologically stored CO2 with 13C monitoring. Int J Greenhouse Gas Control 26:61–68

  • Moonis M, He W, Kim Y, Yoo G (2017) Effect of potential CO2 leakage from carbon capture and storage sites on soil and leachate chemistry. KSCE J Civ Eng 21(5):1640–1647

  • Morales SE, Holben WE (2013) Functional response of a near-surface soil microbial community to a simulated underground CO2 storage leak. PLoS One 8(11):e81742

    Google Scholar 

  • Muller N, Qi R, Mackie E, Pruess K, Blunt MJ (2009) CO2 injection impairment due to halite precipitation. Energy Procedia 1(1):3507–3514

    CAS  Google Scholar 

  • Myers M, Stalker L, Pejcic B, Ross A (2013) Tracers–past, present and future applications in CO2 geosequestration. Appl Geochem 30:125–135

    CAS  Google Scholar 

  • Navarre-Sitchler AK, Maxwell RM, Siirila ER, Hammond GE, Lichtner PC (2013) Elucidating geochemical response of shallow heterogeneous aquifers to CO2 leakage using high-performance computing: implications for monitoring of CO2 sequestration. Adv Water Resour 53:45–55

    CAS  Google Scholar 

  • Newmark RL, Friedmann SJ, Carroll SA (2010) Water challenges for geologic carbon capture and sequestration. Environ Manag 45(4):651–661

    Google Scholar 

  • Nicot JP (2008) Evaluation of large-scale CO2 storage on fresh-water sections of aquifers: an example from the Texas Gulf Coast Basin. Int J Greenhouse Gas Control 2(4):582–593

  • Nooraiepour M, Fazeli H, Miri R, Hellevang H (2018) Salt precipitation during injection of Co2 into saline aquifers: lab-on-chip experiments on glass and geomaterial microfluidic specimens. In 14th Greenhouse Gas Control Technologies Conference Melbourne, pp 21–26

  • Oh J, Kim KY, Han WS, Kim T, Kim JC, Park E (2013) Experimental and numerical study on supercritical CO2/brine transport in a fractured rock: implications of mass transfer, capillary pressure and storage capacity. Adv Water Resour 62:442–453

    CAS  Google Scholar 

  • Oppermann BI, Michaelis W, Blumenberg M, Frerichs J, Schulz HM, Schippers A et al (2010) Soil microbial community changes as a result of long-term exposure to a natural CO2 vent. Geochim Cosmochim Acta 74(9):2697–2716

    CAS  Google Scholar 

  • Ott H, de Kloe K, Taberner C, Marcelis F, Wang Y, Makurat A (2010) Rock/fluid interaction by injection of supercritical CO2/H2S: investigation of dry-zone formation near the injection well. In International Symposium of the Society of Core Analysts, Halifax

  • Ott H, Snippe J, De Kloe K, Husain H, Abri A (2013) Salt precipitation due to Sc-gas injection: single versus multi-porosity rocks. Energy Procedia 37:3319–3330

    CAS  Google Scholar 

  • Pan L, Oldenburg CM, Pruess K, Wu YS (2011) Transient CO2 leakage and injection in wellbore-reservoir systems for geologic carbon sequestration. Greenhouse Gases Sci Technol 1(4):335–350

  • Patil RH, Colls JJ, Steven MD (2010) Effects of CO2 gas as leaks from geological storage sites on agro-ecosystems. Energy 35(12):4587–4591

    CAS  Google Scholar 

  • Pearce JK, Law AC, Dawson GK, Golding SD (2015) SO2–CO2 and pure CO2 reactivity of ferroan carbonates at carbon storage conditions. Chem Geol 411:112–124

    CAS  Google Scholar 

  • Person M, Banerjee A, Rupp J, Medina C, Lichtner P, Gable C et al (2010) Assessment of basin-scale hydrologic impacts of CO2 sequestration, Illinois basin. Int J Greenhouse Gas Control 4(5):840–854

  • Peter A, Lamert H, Beyer M, Hornbruch G, Heinrich B, Schulz A, Geistlinger H, Schreiber B, Dietrich P, Werban U, Vogt C (2012) Investigation of the geochemical impact of CO 2 on shallow groundwater: design and implementation of a CO 2 injection test in Northeast Germany. Environ Earth Sci 67(2):335–349

  • Peysson Y, André L, Azaroual M (2014) Well injectivity during CO2 storage operations in deep saline aquifers—part 1: experimental investigation of drying effects, salt precipitation and capillary forces. Int J Greenhouse Gas Control 22:291–300

  • Pezard PA, Denchik N, Lofi J, Perroud H, Henry G, Neyens D et al (2016) Time-lapse downhole electrical resistivity monitoring of subsurface CO2 storage at the Maguelone shallow experimental site (Languedoc, France). Int J Greenhouse Gas Control 48:142–154

  • Pruess K, Müller N (2009) Formation dry-out from CO2 injection into saline aquifers: 1. Effects of solids precipitation and their mitigation. Water Resour Res 45(3)

  • Rillard J, Loisy C, Le Roux O, Cerepi A, Garcia B, Noirez S et al (2015) The DEMO-CO2 project: a vadose zone CO2 and tracer leakage field experiment. Int J Greenhouse Gas Control 39:302–317

  • Rillard J, Pourret O, Censi P, Inguaggiato C, Zuddas P, Toulhoat P, Gombert P, Brusca L (2019) Behavior of rare earth elements in an aquifer perturbed by CO2 injection: environmental implications. Sci Total Environ 687:978–990

    CAS  Google Scholar 

  • Ringrose PS, Mathieson AS, Wright IW, Selama F, Hansen O, Bissell R et al (2013) The In Salah CO2 storage project: lessons learned and knowledge transfer. Energy Procedia 37:6226–6236

    CAS  Google Scholar 

  • Roberts JJ, Stalker L (2017) What have we learned about CO2 leakage from field injection tests? Energy Procedia 114:5711–5731

    CAS  Google Scholar 

  • Scherf AK, Zetzl C, Smirnova I, Zettlitzer M, Vieth-Hillebrand A (2011) Mobilisation of organic compounds from reservoir rocks through the injection of CO2—comparison of baseline characterization and laboratory experiments. Energy Procedia 4:4524–4531

    CAS  Google Scholar 

  • Shachi, Brijesh Kumar Yadav, Mohammad Azizur Rahman, Mayur Pal (2020) Migration of CO2 through Carbonate Cores: Effect of Salinity, Pressure, and Cyclic Brine-CO2 Injection. J Environ Eng 146(2):04019114

  • Shao H, Qafoku NP, Lawter AR, Bowden ME, Brown CF (2015) Coupled geochemical impacts of leaking CO2 and contaminants from subsurface storage reservoirs on groundwater quality. Environ Sci Technol 49(13):8202–8209

    CAS  Google Scholar 

  • Shao H, Ussiri DA, Patterson CG, Locke RA II, Wang H, Taylor AH, Cohen HF (2019) Soil gas monitoring at the Illinois Basin–Decatur Project carbon sequestration site. Int J Greenhouse Gas Control 86:112–124

  • Shukla R, Ranjith P, Haque A, Choi X (2010) A review of studies on CO2 sequestration and caprock integrity. Fuel 89(10):2651–2664

    CAS  Google Scholar 

  • Siirila ER, Maxwell RM (2012) A new perspective on human health risk assessment: development of a time dependent methodology and the effect of varying exposure durations. Sci Total Environ 431:221–232

    CAS  Google Scholar 

  • Smith KL, Steven MD, Jones DG, West JM, Coombs P, Green KA et al (2013) Environmental impacts of CO2 leakage: recent results from the ASGARD facility, UK. Energy Procedia 37:791–799

    CAS  Google Scholar 

  • Smyth RC, Hovorka SD, Lu J, Romanak KD, Partin JW, Wong C, Yang C (2009) Assessing risk to fresh water resources from long term CO2 injection–laboratory and field studies. Energy Procedia 1(1):1957–1964

    CAS  Google Scholar 

  • Spangler LH, Dobeck LM, Repasky KS, Nehrir AR, Humphries SD, Barr JL et al (2010) A shallow subsurface controlled release facility in Bozeman, Montana, USA, for testing near surface CO 2 detection techniques and transport models. Environ Earth Sci 60(2):227–239

    CAS  Google Scholar 

  • Stalker L, Boreham C, Perkins E (2009) A review of tracers in monitoring CO2 breakthrough: properties, uses, case studies, and novel tracers. In: AAPG Studies in Geology Carbon Dioxide Sequestration in Geological media, vol 59, pp 595–608

    Google Scholar 

  • Strokal M, Spanier JE, Kroeze C, Koelmans AA, Flörke M, Franssen W et al (2019) Global multi-pollutant modelling of water quality: scientific challenges and future directions. Curr Opin Environ Sustain 36:116–125

    Google Scholar 

  • Tang Y, Yang R, Kang X (2018) Modeling the effect of water vaporization and salt precipitation on reservoir properties due to carbon dioxide sequestration in a depleted gas reservoir. Petroleum 4(4):385–397

    Google Scholar 

  • Torp TA, Gale J (2004) Demonstrating storage of CO2 in geological reservoirs: the Sleipner and SACS projects. Energy 29(9–10):1361–1369

    CAS  Google Scholar 

  • Trautz RC, Pugh JD, Varadharajan C, Zheng L, Bianchi M, Nico PS, Spycher NF, Newell DL, Esposito RA, Wu Y, Dafflon B (2012) Effect of dissolved CO2 on a shallow groundwater system: a controlled release field experiment. Environ Sci Technol 47(1):298–305

    Google Scholar 

  • van der Zwaan B, Gerlagh R (2009) Economics of geological CO2 storage and leakage. Clim Chang 93(3–4):285–309

    CAS  Google Scholar 

  • Varadharajan C, Tinnacher RM, Pugh JD, Trautz RC, Zheng L, Spycher NF et al (2013) A laboratory study of the initial effects of dissolved carbon dioxide (CO2) on metal release from shallow sediments. Int J Greenhouse Gas Control 19:183–211

  • Viswanathan H, Dai Z, Lopano C, Keating E, Hakala JA, Scheckel KG et al (2012) Developing a robust geochemical and reactive transport model to evaluate possible sources of arsenic at the CO2 sequestration natural analog site in Chimayo, New Mexico. Int J Greenhouse Gas Control 10:199–214

  • Wainwright HM, Finsterle S, Zhou Q, Birkholzer JT (2013) Modeling the performance of large-scale CO2 storage systems: a comparison of different sensitivity analysis methods. Int J Greenhouse Gas Control 17:189–205

  • Wang S, Jaffe PR (2004) Dissolution of a mineral phase in potable aquifers due to CO2 releases from deep formations; effect of dissolution kinetics. Energy Convers Manag 45(18–19):2833–2848

    CAS  Google Scholar 

  • Wang G, Qafoku NP, Lawter AR, Bowden M, Harvey O, Sullivan C, Brown CF (2016) Geochemical impacts of leaking CO2 from subsurface storage reservoirs to an unconfined oxidizing carbonate aquifer. Int J Greenhouse Gas Control 44:310–322

  • Wei Y, Maroto-Valer M, Steven MD (2011) Environmental consequences of potential leaks of CO2 in soil. Energy Procedia 4:3224–3230

    CAS  Google Scholar 

  • West JM, Pearce JM, Coombs P, Ford JR, Scheib C, Colls JJ et al (2009) The impact of controlled injection of CO2 on the soil ecosystem and chemistry of an English lowland pasture. Energy Procedia 1(1):1863–1870

    CAS  Google Scholar 

  • West JM, Jones DG, Annunziatellis A, Barlow TS, Beaubien SE, Bond A et al (2015) Comparison of the impacts of elevated CO2 soil gas concentrations on selected European terrestrial environments. Int J Greenhouse Gas Control 42:357–371

  • Wilkin RT, DiGiulio DC (2010) Geochemical impacts to groundwater from geologic carbon sequestration: controls on pH and inorganic carbon concentrations from reaction path and kinetic modeling. Environ Sci Technol 44(12):4821–4827

    CAS  Google Scholar 

  • Wilson, E. J., Friedmann, S. J., & Pollak, M. F. (2007). Research for deployment: incorporating risk, regulation, and liability for carbon capture and sequestration. Environ Sci Technol 41(17): 5945–5952.

  • Wu Y, Ma X, Li YE, Wan YF (2014) The impacts of introduced CO2 flux on maize/alfalfa and soil. Int J Greenhouse Gas Control 23:86–97

  • Wunsch A, Navarre-Sitchler AK, Moore J, McCray JE (2014) Metal release from limestones at high partial-pressures of CO2. Chem Geol 363:40–55

    CAS  Google Scholar 

  • Xiao T, McPherson B, Pan F, Esser R, Jia W, Bordelon A, Bacon D (2016) Potential chemical impacts of CO2 leakage on underground source of drinking water assessed by quantitative risk analysis. Int J Greenhouse Gas Control 50:305–316

  • Xie J, Zhang K, Hu L, Wang Y, Chen M (2015a) Understanding the carbon dioxide sequestration in low-permeability saline aquifers in the Ordos Basin with numerical simulations. Greenhouse Gases Sci Technol 5(5):558–576

  • Xie J, Zhang K, Hu L, Pavelic P, Wang Y, Chen M (2015b) Field-based simulation of a demonstration site for carbon dioxide sequestration in low-permeability saline aquifers in the Ordos Basin, China. Hydrogeol J 23(7):1465–1480

    CAS  Google Scholar 

  • Yamamoto H, Zhang K, Karasaki K, Marui A, Uehara H, Nishikawa N (2009) Numerical investigation concerning the impact of CO2 geologic storage on regional groundwater flow. Int J Greenhouse Gas Control 3(5):586–599

  • Yang X, Lassen RN, Jensen KH, Looms MC (2015) Monitoring CO2 migration in a shallow sand aquifer using 3D crosshole electrical resistivity tomography. Int J Greenhouse Gas Control 42:534–544

  • Yang YM, Dilmore RM, Mansoor K, Buscheck TA, Bromhal GS (2019) Integration of wellbore pressure measurement and groundwater quality monitoring to enhance detectability of brine and CO2 leakage. Int J Greenhouse Gas Control 85:143–155

  • Zhang F, Song Y, Li C, Zhang S, Lyu C, Fan K (2019) The impact of indigenous microorganisms on the mineral corrosion and mineral trapping in the SO2 CO-injected CO2-saline-sandstone interaction. Geomicrobiol J 36(2):110–122

    CAS  Google Scholar 

  • Zhao R, Cheng J, Zhang K (2012) CO2 plume evolution and pressure buildup of large-scale CO2 injection into saline aquifers in Sanzhao Depression, Songliao Basin, China. Transp Porous Media 95(2):407–424

  • Zhao X, Deng H, Wang W, Han F, Li C, Zhang H, Dai Z (2017) Impact of naturally leaking carbon dioxide on soil properties and ecosystems in the Qinghai-Tibet plateau. Sci Rep 7(1):3001

    Google Scholar 

  • Zheng L, Spycher N (2018) Modeling the potential impacts of CO2 sequestration on shallow groundwater: the fate of trace metals and organic compounds before and after leakage stops. Greenhouse Gases Sci Technol 8(1):161–184

  • Zheng L, Apps JA, Zhang Y, Xu T, Birkholzer JT (2009) On mobilization of lead and arsenic in groundwater in response to CO2 leakage from deep geological storage. Chem Geol 268(3–4):281–297

    CAS  Google Scholar 

  • Zheng L, Apps JA, Spycher N, Birkholzer JT, Kharaka YK, Thordsen J, Beers SR, Herkelrath WN, Kakouros E, Trautz RC (2012) Geochemical modeling of changes in shallow groundwater chemistry observed during the MSU-ZERT CO2 injection experiment. Int J Greenhouse Gas Control 7:202–217

  • Zheng L, Spycher N, Bianchi M, Pugh JD, Varadharajan C, Tinnacher RM et al (2016) Impacts of elevated dissolved CO2 on a shallow groundwater system: reactive transport modeling of a controlled-release field test. Chem Geol 447:117–132

    CAS  Google Scholar 

  • Zhou Q, Birkholzer JT (2011) On scale and magnitude of pressure build-up induced by large-scale geologic storage of CO2. Greenhouse Gases Sci Technol 1(1):11–20

  • Zhou Q, Birkholzer JT, Mehnert E, Lin YF, Zhang K (2010) Modeling basin-and plume-scale processes of CO2 storage for full-scale deployment. Groundwater 48(4):494–514

    CAS  Google Scholar 

  • Ziogou F, Gemeni V, Koukouzas N, De Angelis D, Libertini S, Beaubien SE et al (2013) Potential environmental impacts of CO2 leakage from the study of natural analogue sites in Europe. Energy Procedia 37:3521–3528

    CAS  Google Scholar 

  • Zoback MD, Gorelick SM (2012) Earthquake triggering and large-scale geologic storage of carbon dioxide. Proc Natl Acad Sci 109(26):10164–10168

    CAS  Google Scholar 

Download references

Acknowledgments

Help from the Writing and Communication Center and the library of University of Waterloo are well acknowledged. The authors would like to thank the Editor-in-Chief and anonymous reviewer for the valuable comments that enabled much improvement to this paper.

Author information

Affiliations

Authors

Corresponding author

Correspondence to Pankaj Kumar Gupta.

Ethics declarations

Conflict of interest

The authors declare that they have no conflict of interest.

Additional information

Publisher’s note

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Responsible editor: Philippe Garrigues

Rights and permissions

Reprints and Permissions

About this article

Verify currency and authenticity via CrossMark

Cite this article

Gupta, P.K., Yadav, B. Leakage of CO2 from geological storage and its impacts on fresh soil–water systems: a review. Environ Sci Pollut Res 27, 12995–13018 (2020). https://doi.org/10.1007/s11356-020-08203-7

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s11356-020-08203-7

Keywords

  • CO2 capture and storage
  • Leakage
  • Dissolution
  • Subsurface pollution
  • Microbial shifting