Sustainable antibacterial performance in cementitious systems using Ag-modified TiO2 compounds

Serdal ÜNAL , Mehmet ORHAN , Mehmet CANBAZ

Front. Struct. Civ. Eng. ›› 2025, Vol. 19 ›› Issue (7) : 1061 -1074.

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Front. Struct. Civ. Eng. ›› 2025, Vol. 19 ›› Issue (7) : 1061 -1074. DOI: 10.1007/s11709-025-1187-2
RESEARCH ARTICLE

Sustainable antibacterial performance in cementitious systems using Ag-modified TiO2 compounds

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Abstract

The increasing focus on health and hygiene has expanded the need for protective measures on material surfaces. In this regard, developing antibacterial concrete and mortar capable of eliminating viruses and bacteria is crucial. However, a key challenge in cementitious systems is the inability to maintain long-term antibacterial effectiveness when titanium dioxide (TiO2) is used as the sole photocatalyst. To address this limitation, this study aimed to enhance the antibacterial properties of TiO2 by modifying it with silver (Ag) using a planetary ball mill. Concrete and mortar samples incorporating the modified material were produced, and their antibacterial performance was evaluated over both short and long durations. So the originality of this study was to evaluate the performance of cementitious system surfaces against repeated bacterial attacks using a specific mechanical alloying method in the modification of TiO2 with Ag. Additionally, the modified products were characterized through X-ray diffraction (XRD), fourier transformed infrared spectroscopy (FTIR), scanning electron microscopy-energy dispersive spectroscopy (SEM-EDS) imaging, grain size analysis, and band gap energy measurements. The impact of the components on antibacterial efficiency was statistically analyzed using analysis of covariance (ANCOVA). The results demonstrated that Ag-containing samples achieved a 100% bacterial killing rate in all experimental replicates. These findings confirm that Ag-TiO2 alloying was successfully achieved via planetary ball milling, providing concrete with sustained antibacterial properties in both early and long-term applications.

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Keywords

concrete / mortar / titanium dioxide / silver / antibacterial performance

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Serdal ÜNAL, Mehmet ORHAN, Mehmet CANBAZ. Sustainable antibacterial performance in cementitious systems using Ag-modified TiO2 compounds. Front. Struct. Civ. Eng., 2025, 19(7): 1061-1074 DOI:10.1007/s11709-025-1187-2

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References

[1]

Khan A U, Yuan Q, Wei Y, Khan G M, Khan Z U H, Khan S, Khan F U. Photocatalytic and antibacterial response of biosynthesized gold nanoparticles. Journal of Photochemistry and Photobiology. B, Biology, 2016, 162: 273–277

[2]

Alotaibi A M, Williamson B A, Sathasivam S, Kafizas A, Alqahtani M, Sotelo-Vazquez C, Parkin I P. Enhanced photocatalytic and antibacterial ability of Cu-doped anatase TiO2 thin films: Theory and experiment. ACS Applied Materials & Interfaces, 2020, 12(13): 15348–15361

[3]

Orhan M, Koç S, Özakın C, Hocekenberger A, Sınırtaş M. Evaluation of antibacterial and antifungal activities of textiles used in hospitals. Kahramanmaraş Sütçü İmam University Journal of Engineering Sciences, 2019, 22(1): 19–31

[4]

Sun L, Chen X, Chen R, Ji Z, Mu H, Liu C, Xia L. Balancing the antibacterial and osteogenic effects of double-layer TiO2 nanotubes loaded with silver nanoparticles for the osseointegration of implants. Nanoscale, 2023, 15(6): 2911–2923

[5]

Ru X, Chu M, Jiang J, Yin T, Li J, Gao S. Polyetheretherketone/Nano-Ag-TiO2 composite with mechanical properties and antibacterial activity. Journal of Applied Polymer Science, 2023, 140(4): e53377

[6]

Nagay B E, Dini C, Cordeiro J M, Ricomini-Filho A P, de Avila E D, Rangel E C, Barao V A. Visible-light-induced photocatalytic and antibacterial activity of TiO2 codoped with nitrogen and bismuth: New perspectives to control implant-biofilm-related diseases. ACS Applied Materials & Interfaces, 2019, 11(20): 18186–18202

[7]

HanBZhangLOuJ. Smart and Multifunctional Concrete Toward Sustainable Infrastructures. Singapore: Springer, 2017

[8]

Qiu L, Dong S, Ashour A, Han B. Antimicrobial concrete for smart and durable infrastructures: A review. Construction and Building Materials, 2020, 260: 120456

[9]

SapuanS MIlyasR AHarussaniM M. Recent Development of Functional Materials and Composites as a Key Arsenal in Combating the COVID-19 Pandemic. Cham: Springer, 2025, 109–132

[10]

Ding S, Wang J, Dong S, Ashour A, Liu Y, Qiu L, Ou J. Developing multifunctional/smart civil engineering materials to fight viruses. ACS Sustainable Chemistry & Engineering, 2022, 10(2): 678–690

[11]

Li Z, Dong S, Ashour A, Wang X, Thakur V K, Han B, Shah S P. On the incorporation of nano TiO2 to inhibit concrete deterioration in the marine environment. Nanotechnology, 2022, 33(13): 135704

[12]

Li Z, Ding S, Kong L, Wang X, Ashour A, Han B, Ou J. Nano TiO2-engineered anti-corrosion concrete for sewage system. Journal of Cleaner Production, 2022, 337: 130508

[13]

Li S, Hu M, Chen X, Sui S, Jin L, Geng Y, Liu A. The performance and functionalization of modified cementitious materials via nano titanium-dioxide: A review. Case Studies in Construction Materials, 2023, 19: e02414

[14]

Li Z, Ding S, Yu X, Han B, Ou J. Multifunctional cementitious composites modified with nano titanium dioxide: A review. Composites. Part A, Applied Science and Manufacturing, 2018, 111: 115–137

[15]

Han B, Li Z, Zhang L, Zeng S, Yu X, Han B, Ou J. Reactive powder concrete reinforced with nano SiO2-coated TiO2. Construction and Building Materials, 2017, 148: 104–112

[16]

Humayun M, Raziq F, Khan A, Luo W. Modification strategies of TiO2 for potential applications in photocatalysis: A critical review. Green Chemistry Letters and Reviews, 2018, 11(2): 86–102

[17]

Du P, Niu P, Yang Y, Chen R, Yin L C, Fan F, Liu G. Constructing anatase-brookite TiO2 phase junction by thermal topotactic transition to promote charge separation for superior photocatalytic H2 generation. Journal of Physical Chemistry Letters, 2022, 13(19): 4244–4250

[18]

Li G, Fang K, Ou Y, Yuan W, Yang H, Zhang Z, Wang Y. Surface study of the reconstructed anatase TiO2 (001) surface. Progress in Natural Science, 2021, 31(1): 1–13

[19]

MertE H. Enhancement of the photocatalytic activity of TiO2 characterisation of ascorbic acid modified TiO2 and modelling of the photocatalytic degradation reaction of hydroquinone. Thsis for the Master’s Degree. Istanbul: Yıldız Technical University, 2006

[20]

Liu C, Geng L, Yu Y, Zhang Y, Zhao B, Zhao Q. Mechanisms of the enhanced antibacterial effect of Ag-TiO2 coatings. Biofouling, 2018, 34(2): 190–199

[21]

Titov V, Nikitin D, Naumova I, Losev N, Lipatova I, Kosterin D, Choukourov A. Dual-mode solution plasma processing for the production of chitosan/Ag composites with the antibacterial effect. Materials, 2020, 13(21): 4821

[22]

Rebelo R, Calderon S V, Fangueiro R, Henriques M, Carvalho S. Influence of oxygen content on the antibacterial effect of Ag-O coatings deposited by magnetron sputtering. Surface and Coatings Technology, 2016, 305: 1–10

[23]

Liu Y, Wang X, Yang F, Yang X. Excellent antimicrobial properties of mesoporous anatase TiO2 and Ag/TiO2 composite films. Microporous and Mesoporous Materials, 2008, 114(1–3): 431–439

[24]

Wei M, Wang B, Chen M, Lyu H, Lee X, Wang S, Zhang X. Recent advances in the treatment of contaminated soils by ball milling technology: Classification, mechanisms, and applications. Journal of Cleaner Production, 2022, 340: 130821

[25]

Zhang F L, Zhu M, Wang C Y. Parameters optimization in the planetary ball milling of nanostructured tungsten carbide/cobalt powder. International Journal of Refractory & Hard Metals, 2008, 26(4): 329–333

[26]

Kho H X, Bae S, Bae S, Kim B W, Kim J S. Planetary ball mill process in aspect of milling energy. Journal of Powder Materials, 2014, 21(2): 155–164

[27]

Park J, Öztürk A. Photocatalytic properties of silver loaded TiO2 powders by mechanical ball milling method. Afyon Kocatepe University Journal of Science and Engineering, 2014, 14: 239–247

[28]

Kim K C, Jiang T, Kim N I, Kwon C. Effects of ball-to-powder diameter ratio and powder particle shape on EDEM simulation in a planetary ball mill. Journal of the Indian Chemical Society, 2022, 99(1): 100300

[29]

Feng Y T, Han K, Owen D R J. Discrete element simulation of the dynamics of high energy planetary ball milling processes. Materials Science and Engineering A, 2004, 375: 815–819

[30]

Wen B, Aydin A, Duzgoren-Aydin N S. A comparative study of particle size analyses by sieve-hydrometer and laser diffraction methods. Geotechnical Testing Journal, 2002, 25(4): 434–442

[31]

Li H, Li J, Bodycomb J, Patience G S. Experimental methods in chemical engineering: Particle size distribution by laser diffraction—PSD. Canadian Journal of Chemical Engineering, 2019, 97(7): 1974–1981

[32]

Jo W K, Natarajan T S. Influence of TiO2 morphology on the photocatalytic efficiency of direct Z-scheme g-C3N4/TiO2 photocatalysts for isoniazid degradation. Chemical Engineering Journal, 2015, 281: 549–565

[33]

León A, Reuquen P, Garín C, Segura R, Vargas P, Zapata P, Orihuela P A. FTIR and Raman characterization of TiO2 nanoparticles coated with polyethylene glycol as carrier for 2-methoxyestradiol. Applied Sciences, 2017, 7(1): 49

[34]

Jędrzejczak P, Ławniczak Ł, Ślosarczyk A, Klapiszewski Ł. Physicomechanical and antimicrobial characteristics of cement composites with selected nano-sized oxides and binary oxide systems. Materials, 2022, 15(2): 661

[35]

Geoprincy G, Srri B V, Poonguzhali U, Gandhi N N, Renganathan S. A review on green synthesis of silver nanoparticles. Asian Journal of Pharmaceutical and Clinical Research, 2013, 6(1): 8–12

[36]

Lin B, Luo Y, Teng Z, Zhang B, Zhou B, Wang Q. Development of silver/titanium dioxide/chitosan adipate nanocomposite as an antibacterial coating for fruit storage. Lebensmittel-Wissenschaft + Technologie, 2015, 63(2): 1206–1213

[37]

Anandalakshmi K, Venugobal J, Ramasamy V J. Characterization of silver nanoparticles by green synthesis method using Pedalium murex leaf extract and their antibacterial activity. Applied Nanoscience, 2016, 6(3): 399–408

[38]

Salinas Domínguez R A, Orduña-Díaz A, Cerón S, Dominguez M A. Analysis and study of characteristic FTIR absorption peaks in hafnium oxide thin films deposited at low-temperature. Transactions on Electrical and Electronic Materials, 2020, 21(1): 68–73

[39]

Lungu M, Gavriliu Ş, Enescu E, Ion I, Brătulescu A, Mihăescu G, Chifiriuc M C. Silver–titanium dioxide nanocomposites as effective antimicrobial and antibiofilm agents. Journal of Nanoparticle Research, 2014, 16(1): 1–15

[40]

Marini M, De Niederhausern S, Iseppi R, Bondi M, Sabia C, Toselli M, Pilati F. Antibacterial activity of plastics coated with silver-doped organic−inorganic hybrid coatings prepared by sol− gel processes. Biomacromolecules, 2007, 8(4): 1246–1254

[41]

Shrivastava S, Bera T, Roy A, Singh G, Ramachandrarao P, Dash D. Retracted: Characterization of enhanced antibacterial effects of novel silver nanoparticles. Nanotechnology, 2007, 18(22): 225103

[42]

Tan S X, Tan S Z, Chen J X, Liu Y L, Yuan D S. Preparation and properties of antibacterial TiO2@ C/Ag core–shell composite. Science and Technology of Advanced Materials, 2009, 10(4): 045002

[43]

Baptista P V, McCusker M P, Carvalho A, Ferreira D A, Mohan N M, Martins M, Fernandes A R. Nano-strategies to fight multidrug resistant bacteria “A Battle of the Titans”. Frontiers in Microbiology, 2018, 9: 381070

[44]

Abbaszadegan A, Ghahramani Y, Gholami A, Hemmateenejad B, Dorostkar S, Nabavizadeh M, Sharghi H. The effect of charge at the surface of silver nanoparticles on antimicrobial activity against gram-positive and gram-negative bacteria: A preliminary study. Journal of Nanomaterials, 2015, 16(1): 53–53

[45]

Durán N, Durán M, De Jesus M B, Seabra A B, Fávaro W J, Nakazato G. Silver nanoparticles: A new view on mechanistic aspects on antimicrobial activity. Nanomedicine, Nanotechnology, Biology, and Medicine, 2016, 12(3): 789–799

[46]

Rajeshkumar S, Bharath L V. Mechanism of plant-mediated synthesis of silver nanoparticles––A review on biomolecules involved, characterisation and antibacterial activity. Chemico-Biological Interactions, 2017, 273: 219–227

[47]

Liu X, Cai J, Chen H, Zhong Q, Hou Y, Chen W, Chen W. Antibacterial activity and mechanism of linalool against Pseudomonas aeruginosa. Microbial Pathogenesis, 2020, 141: 103980

[48]

Chakhtouna H, Benzeid H, Zari N, Qaiss A E K, Bouhfid R. Recent progress on Ag/TiO2 photocatalysts: Photocatalytic and bactericidal behaviors. Environmental Science and Pollution Research International, 2021, 28(33): 44638–44666

[49]

Méndez-VilasA. Nanoparticles and their potential application as antimicrobials. Science Against Microbial pathogens: Communicating Current Research and Technological Advances: Formatex, 2011: 197–209

[50]

Yang X H, Fu H T, Wang X C, Yang J L, Jiang X C, Yu A B. Synthesis of silver-titanium dioxide nanocomposites for antimicrobial applications. Journal of Nanoparticle Research, 2014, 16(8): 1–13

[51]

Harrasser N, Jüssen S, Banke I J, Kmeth R, von Eisenhart-Rothe R, Stritzker B, Burgkart R. Antibacterial efficacy of titanium-containing alloy with silver-nanoparticles enriched diamond-like carbon coatings. AMB Express, 2015, 5(1): 1–11

[52]

Soares T P, Garcia C S, Roesch-Ely M, da Costa M E M, Giovanela M, Aguzzoli C. Cytotoxicity and antibacterial efficacy of silver deposited onto titanium plates by low-energy ion implantation. Journal of Materials Research, 2018, 33(17): 2545–2553

[53]

Moreno D, Buxadera-Palomero J, Ginebra M P, Manero J M, Martin-Gómez H, Mas-Moruno C, Rodríguez D. Comparison of the antibacterial effect of silver nanoparticles and a multifunctional antimicrobial peptide on titanium surface. International Journal of Molecular Sciences, 2023, 24(11): 9739

[54]

Qing Y A, Cheng L, Li R, Liu G, Zhang Y, Tang X, Qin Y. Potential antibacterial mechanism of silver nanoparticles and the optimization of orthopedic implants by advanced modification technologies. International Journal of Nanomedicine, 2018, 13: 3311–3327

[55]

Zhao D, Zhou J, Liu N. Preparation and characterization of Mingguang palygorskite supported with silver and copper for antibacterial behavior. Applied Clay Science, 2006, 33(3-4): 161–170

[56]

SizarOLeslieS WUnakalC G. Gram-positive Bacteria. StatPearls Publishing, 2023: 29261915

[57]

KailasaS KParkT JRohitJ VKoduruJ R. Antimicrobial Activity of Silver Nanoparticles. New York, NY: William Andrew Publishing, 2019, 461–484

[58]

Kim B, Kim D, Cho D. Bactericidal effect of TiO2 photocatalyst on selected food-borne pathogenic bacteria. Chemosphere, 2003, 52(1): 277–281

[59]

Morones J R, Elechiguerra J L, Camacho A, Holt K, Kouri J B, Ramírez J T, Yacaman M J. The bactericidal effect of silver nanoparticles. Nanotechnology, 2005, 16(10): 2346–2353

[60]

Foster H A, Ditta I B, Varghese S, Steele A. Photocatalytic disinfection using titanium dioxide: Spectrum and mechanism of antimicrobial activity. Applied Microbiology and Biotechnology, 2011, 90(6): 1847–1868

[61]

Liou J W, Chang H H. Bactericidal effects and mechanisms of visible light-responsive titanium dioxide photocatalysts on pathogenic bacteria. Archivum Immunologiae et Therapiae Experimentalis, 2012, 60(4): 267–275

[62]

Cho W H, Kang D J, Kim S G. Intraparticle structures of composite TiO2/SiO2 nanoparticles prepared by varying precursor mixing modes in vapor phase. Journal of Materials Science, 2003, 38(12): 2619–2625

[63]

Chen X, Mao S S. Titanium dioxide nanomaterials: Synthesis, properties, modifications, and applications. Chemical Reviews, 2007, 107(7): 2891–2959

[64]

Maness P C, Smolinski S, Blake D M, Huang Z, Wolfrum E J, Jacoby W A. Bactericidal activity of photocatalytic TiO2 reaction: Toward an understanding of its killing mechanism. Applied and Environmental Microbiology, 1999, 65(9): 4094–4098

[65]

Mocioiu A M, Mohanu I, Piticescu R M, Tudor I A, Petre I, Ghiță M, Neagu S. Self-cleaning and antibacterial properties of the cement mortar with ZnO/hydroxyapatite powders. Inorganics, 2022, 10(12): 241

[66]

Dehkordi B A, Nilforoushan M R, Talebian N, Tayebi M. A comparative study on the self-cleaning behavior and antibacterial activity of Portland cement by addition of TiO2 and ZnO nanoparticles. Materials Research Express, 2021, 8(3): 035403

[67]

Guldaş M, Canbaz M, Orhan M. Effect of zeolite additives on the antibacterial and self-cleaning mortar properties. Bitlis Eren University Journal of Science and Technology, 2021, 10(3): 987–998

[68]

Gutierrez R M D, Villaquiran-Caicedo M, Ramirez-Benavides S, Astudillo M, Mejia D. Evaluation of the antibacterial activity of a geopolymer mortar based on metakaolin supplemented with TiO2 and CuO particles using glass waste as fine aggregate. Coatings, 2020, 10(2): 157

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