TY - JOUR
T1 - Synthesis and transformation of calcium carbonate polymorphs with chiral purine nucleotides
AU - Iqbal, Muhammad Javed
AU - Riaz, Muhammad Sohail
AU - Talha, Khalid
AU - Shoukat, Rizwan
AU - Mahmood, Sajid
AU - Ammar, Muhammad
AU - Li, Hui
N1 - Publisher Copyright:
© 2022 The Royal Society of Chemistry.
PY - 2022/10/31
Y1 - 2022/10/31
N2 - The biomineralization process in organisms produces better quality biominerals. The most promising approach is using proteins with differing amounts of amino acids in crystals to create biominerals. Calcium carbonate (CaCO3) polymorph crystallization is controlled using the chiral nucleotides adenosine triphosphate (ATP) and guanosine triphosphate (GTP). SEM, XRD, TEM, FTIR spectroscopy, and chiral dichroism (CD) spectroscopy are utilized to study the crystals of CaCO3 in detail. The results suggest that the purine nucleotides (ATP and GTP) lead to single cubic calcite crystals converted into spherical and sponge-like vaterite crystals. Chiral purine triphosphates influence the crystal structure and development of CaCO3 significantly. ATP and GTP play a significant role in forming CaCO3 polymorphs. The impacts of chiral ATP and GTP on vaterite production are also studied to understand better the diverse morphologies of vaterite originated and to introduce innovative ideas for developing biominerals into smart bionics. The synthesis of CaCO3 with different chiral morphologies and polymorphs helps to generate materials like natural materials with enhanced optical properties and reflective properties, as found in living things. The synthesised CaCO3 biomaterials with different crystal forms and morphologies may be used in ceramic, drug delivery, bone tissue, and pollution prevention applications.
AB - The biomineralization process in organisms produces better quality biominerals. The most promising approach is using proteins with differing amounts of amino acids in crystals to create biominerals. Calcium carbonate (CaCO3) polymorph crystallization is controlled using the chiral nucleotides adenosine triphosphate (ATP) and guanosine triphosphate (GTP). SEM, XRD, TEM, FTIR spectroscopy, and chiral dichroism (CD) spectroscopy are utilized to study the crystals of CaCO3 in detail. The results suggest that the purine nucleotides (ATP and GTP) lead to single cubic calcite crystals converted into spherical and sponge-like vaterite crystals. Chiral purine triphosphates influence the crystal structure and development of CaCO3 significantly. ATP and GTP play a significant role in forming CaCO3 polymorphs. The impacts of chiral ATP and GTP on vaterite production are also studied to understand better the diverse morphologies of vaterite originated and to introduce innovative ideas for developing biominerals into smart bionics. The synthesis of CaCO3 with different chiral morphologies and polymorphs helps to generate materials like natural materials with enhanced optical properties and reflective properties, as found in living things. The synthesised CaCO3 biomaterials with different crystal forms and morphologies may be used in ceramic, drug delivery, bone tissue, and pollution prevention applications.
UR - http://www.scopus.com/inward/record.url?scp=85142375867&partnerID=8YFLogxK
U2 - 10.1039/d2nj03813g
DO - 10.1039/d2nj03813g
M3 - Article
AN - SCOPUS:85142375867
SN - 1144-0546
VL - 46
SP - 22612
EP - 22620
JO - New Journal of Chemistry
JF - New Journal of Chemistry
IS - 47
ER -