Microbial Biomineralization of Alkaline Earth Metal Carbonates on 3D-Printed Surfaces

被引:2
|
作者
Natalio, Filipe [1 ]
Maria, Raquel [2 ]
机构
[1] Weizmann Inst Sci, Dept Plant & Environm Sci, IL-76100 Rehovot, Israel
[2] Ben Gurion Univ Negev, Ilse Katz Inst Nanoscale Sci & Technol, IL-8410501 Beer Sheva, Israel
关键词
bacteria; coatings; alkali earth metal; 3D printing; biomineralization; CALCIUM-CARBONATE; SPOROSARCINA-PASTEURII; THERMAL-DECOMPOSITION; MYXOCOCCUS-XANTHUS; PRECIPITATION; NESQUEHONITE; MINERALIZATION; STABILITY; CRYSTALLIZATION; STRONTIUM;
D O I
10.1021/acsami.3c13665
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The biomineralizing bacterium Sporosarcina pasteurii has attracted considerable interest in the area of geotechnical engineering due to its ability to induce extracellular mineralization. The presented study investigated S. pasteurii's potential to induce the mineralization of alkali-earth metal carbonate coatings on different polymeric 3D-printed flat surfaces fabricated by different additive manufacturing methods. The use of calcium, barium, strontium, or magnesium ions as the source resulted in the formation of vaterite (CaCO3), witherite (BaCO3), strontianite (SrCO3), and nesquehonite MgCO3<middle dot>3H(2)O, respectively. These mineral coatings generally exhibit a compact, yet variable, thickness and are composed of agglomerated microparticles similar to those formed in solution. However, the mechanism behind this clustering remains unclear. The thermal properties of these biologically induced mineral coatings differ from their inorganic counterpart, highlighting the unique characteristics imparted by the biomineralization process. This work seeks to capitalize on the bacterium S. pasteurii's ability to form an alkali-earth metal carbonate coating to expand beyond its traditional use in geoengineering applications. It lays the ground for a novel integration of biologically induced mineralization of single or multilayered and multifunctional coating materials, for example, aerospace applications.
引用
收藏
页码:6327 / 6336
页数:10
相关论文
共 50 条
  • [1] INTRICATE 3D-PRINTED POROUS SURFACES
    Zhang, Yihui
    [J]. ADVANCED MATERIALS & PROCESSES, 2023, 181 (04): : 72 - 72
  • [2] A 3D-printed alkali metal dispenser
    Norrgard, E. B.
    Barker, D. S.
    Fedchak, J. A.
    Klimov, N.
    Scherschligt, J.
    Eckel, S.
    [J]. REVIEW OF SCIENTIFIC INSTRUMENTS, 2018, 89 (05):
  • [3] Stabilizing 3D-printed metal alloys
    Zhang, Lai-Chang
    Wang, Jincheng
    [J]. SCIENCE, 2024, 383 (6683) : 586 - 587
  • [4] Frictional Anisotropy of 3D-Printed Fault Surfaces
    Vincent-Dospital, Tom
    Steyer, Alain
    Renard, Francois
    Toussaint, Renaud
    [J]. FRONTIERS IN EARTH SCIENCE, 2021, 9
  • [5] Improving the Mechanical Properties of 3D-Printed Metal
    Kabaldin Y.G.
    Anosov M.S.
    Kolchin P.V.
    Shatagin D.A.
    [J]. Russian Engineering Research, 2023, 43 (8) : 976 - 979
  • [6] Local electrochemical activity of transition metal dichalcogenides and their heterojunctions on 3D-printed nanocarbon surfaces
    Novcic, Katarina A.
    Iffelsberger, Christian
    Ng, Siowwoon
    Pumera, Martin
    [J]. NANOSCALE, 2021, 13 (10) : 5324 - 5332
  • [7] 3D-Printed Frequency Selective Surfaces for Microwave Absorbers
    Kronberger, Rainer
    Soboll, Patrick
    [J]. 2016 INTERNATIONAL SYMPOSIUM ON ANTENNAS AND PROPAGATION (ISAP), 2016, : 178 - 179
  • [8] PVC-alkaline earth metal carbonates mixtures. I. PVC thermodegradation in the presence of alkaline earth metal carbonates
    Cailean, A
    Rosca, I
    Sutiman, D
    Cretescu, I
    Vizitiu, M
    Sibiescu, D
    [J]. MATERIALE PLASTICE, 2001, 38 (01) : 45 - 51
  • [9] Low-Roughness 3D-Printed Surfaces by Ironing for the Integration with Printed Electronics
    Neuhaus, Benno
    Idris, Mohamad Kannan
    Naderi, Paria
    El-Hajj, Yoland
    Grau, Gerd
    [J]. ADVANCED ENGINEERING MATERIALS, 2024, 26 (03)
  • [10] A 3D-printed metal column for micro gas chromatography
    Phyo, Sooyeol
    Choi, Sung
    Jang, Jaeheok
    Choi, Sun
    Lee, Jiwon
    [J]. LAB ON A CHIP, 2020, 20 (18) : 3435 - 3444