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Study on the conformational transformation and biocompatibility of mixed valence MOFs as micro arc oxidation treated binder jetting printed titanium alloy implant coatings. / He, XL; Luo, X; Zeng, ZYB; Cai, HW; OuYang, LH; Liu, RC; Huang, BS; Fan, Z; Yu, KO; Konakov, VG.

In: Materials Today Nano, Vol. 32, 2025.

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He, XL ; Luo, X ; Zeng, ZYB ; Cai, HW ; OuYang, LH ; Liu, RC ; Huang, BS ; Fan, Z ; Yu, KO ; Konakov, VG. / Study on the conformational transformation and biocompatibility of mixed valence MOFs as micro arc oxidation treated binder jetting printed titanium alloy implant coatings. In: Materials Today Nano. 2025 ; Vol. 32.

BibTeX

@article{bdfd771c90de4a3cae32841126ff7302,
title = "Study on the conformational transformation and biocompatibility of mixed valence MOFs as micro arc oxidation treated binder jetting printed titanium alloy implant coatings",
abstract = "Currently, Selective Laser Melted (SLM) titanium alloys can meet the demands of personalized medical devices, but their poor surface roughness results in suboptimal surface biocompatibility. A low cost, high-efficiency 3D printing method, binder jetting additive manufacturing (BJAM), effectively address this issue. Furthermore, the application of bioactive coating on the BJAM-ed titanium alloy implants can enhance their surface bioinertness. This study synthesized Mn-MOFs via a solvothermal method, and then investigated the effects of synthesis temperature on the morphology, structure, and cyto-toxicity of Mn-BTC. Finally, the Mn-BTC with the best biocompatibility were coated on the BJAM-ed TC4 implant. The results indicate that Mn3+ was gradually reduced to Mn2+ by the thermodynamic driving forces, prompting a morphological transition of Mn-BTC from asymmetric polyhedrons to uniform spheres. This valence-morphology synergy significantly reduces the cytotoxicity of Mn-BTC synthesized at 170 degrees C. Subsequently, the 170 degrees C-synthesized Mn-BTC was coated on the BJAM-TC4 titanium alloy implants via micro-arc oxidation (MAO) to fabricate a Mn-BTC/MAO-TC4 coating. This coating not only effectively improves the RGR (increase by 12.1 %) compared to BJAM-TC4 but also significantly promotes BMSC adhesion performance. This study unveils the structure-activity relationship between temperature and morphology in Mn-BTC, providing a novel strategy for the surface functionalization of BJAM titanium alloy implants.",
keywords = "Metal-organic frameworks, Carboxylate ligands, Binder jetting printed titanium alloy, Surface coating, Biocompatibility, METAL-ORGANIC FRAMEWORKS, ION, STORAGE",
author = "XL He and X Luo and ZYB Zeng and HW Cai and LH OuYang and RC Liu and BS Huang and Z Fan and KO Yu and VG Konakov",
note = "Times Cited in Web of Science Core Collection: 0 Total Times Cited: 0 Cited Reference Count: 59",
year = "2025",
doi = "10.1016/j.mtnano.2025.100709",
language = "Английский",
volume = "32",
journal = "Materials Today Nano",
issn = "2588-8420",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - Study on the conformational transformation and biocompatibility of mixed valence MOFs as micro arc oxidation treated binder jetting printed titanium alloy implant coatings

AU - He, XL

AU - Luo, X

AU - Zeng, ZYB

AU - Cai, HW

AU - OuYang, LH

AU - Liu, RC

AU - Huang, BS

AU - Fan, Z

AU - Yu, KO

AU - Konakov, VG

N1 - Times Cited in Web of Science Core Collection: 0 Total Times Cited: 0 Cited Reference Count: 59

PY - 2025

Y1 - 2025

N2 - Currently, Selective Laser Melted (SLM) titanium alloys can meet the demands of personalized medical devices, but their poor surface roughness results in suboptimal surface biocompatibility. A low cost, high-efficiency 3D printing method, binder jetting additive manufacturing (BJAM), effectively address this issue. Furthermore, the application of bioactive coating on the BJAM-ed titanium alloy implants can enhance their surface bioinertness. This study synthesized Mn-MOFs via a solvothermal method, and then investigated the effects of synthesis temperature on the morphology, structure, and cyto-toxicity of Mn-BTC. Finally, the Mn-BTC with the best biocompatibility were coated on the BJAM-ed TC4 implant. The results indicate that Mn3+ was gradually reduced to Mn2+ by the thermodynamic driving forces, prompting a morphological transition of Mn-BTC from asymmetric polyhedrons to uniform spheres. This valence-morphology synergy significantly reduces the cytotoxicity of Mn-BTC synthesized at 170 degrees C. Subsequently, the 170 degrees C-synthesized Mn-BTC was coated on the BJAM-TC4 titanium alloy implants via micro-arc oxidation (MAO) to fabricate a Mn-BTC/MAO-TC4 coating. This coating not only effectively improves the RGR (increase by 12.1 %) compared to BJAM-TC4 but also significantly promotes BMSC adhesion performance. This study unveils the structure-activity relationship between temperature and morphology in Mn-BTC, providing a novel strategy for the surface functionalization of BJAM titanium alloy implants.

AB - Currently, Selective Laser Melted (SLM) titanium alloys can meet the demands of personalized medical devices, but their poor surface roughness results in suboptimal surface biocompatibility. A low cost, high-efficiency 3D printing method, binder jetting additive manufacturing (BJAM), effectively address this issue. Furthermore, the application of bioactive coating on the BJAM-ed titanium alloy implants can enhance their surface bioinertness. This study synthesized Mn-MOFs via a solvothermal method, and then investigated the effects of synthesis temperature on the morphology, structure, and cyto-toxicity of Mn-BTC. Finally, the Mn-BTC with the best biocompatibility were coated on the BJAM-ed TC4 implant. The results indicate that Mn3+ was gradually reduced to Mn2+ by the thermodynamic driving forces, prompting a morphological transition of Mn-BTC from asymmetric polyhedrons to uniform spheres. This valence-morphology synergy significantly reduces the cytotoxicity of Mn-BTC synthesized at 170 degrees C. Subsequently, the 170 degrees C-synthesized Mn-BTC was coated on the BJAM-TC4 titanium alloy implants via micro-arc oxidation (MAO) to fabricate a Mn-BTC/MAO-TC4 coating. This coating not only effectively improves the RGR (increase by 12.1 %) compared to BJAM-TC4 but also significantly promotes BMSC adhesion performance. This study unveils the structure-activity relationship between temperature and morphology in Mn-BTC, providing a novel strategy for the surface functionalization of BJAM titanium alloy implants.

KW - Metal-organic frameworks

KW - Carboxylate ligands

KW - Binder jetting printed titanium alloy

KW - Surface coating

KW - Biocompatibility

KW - METAL-ORGANIC FRAMEWORKS

KW - ION

KW - STORAGE

U2 - 10.1016/j.mtnano.2025.100709

DO - 10.1016/j.mtnano.2025.100709

M3 - статья

VL - 32

JO - Materials Today Nano

JF - Materials Today Nano

SN - 2588-8420

ER -

ID: 147936227