Purpose: To compare the outcomes of silicone proximal interphalangeal joint (PIPJ) arthroplasties to pyrolytic carbon implants in patients with osteoarthritis.
Methods: This study is a retrospective review of 41 arthroplasties in 22 patients with severe PIPJ osteoarthritis performed by a single surgeon. There were 13 patients and 22 joints in the silicone group with an average follow-up of 45 months. There were 9 patients and 19 joints in the pyrolytic carbon group with an average follow-up of 19 months. Clinical assessment included range of motion, grip strength, and deformity. Radiographs were evaluated for alignment, subsidence, and implant fracture. Patients filled out a subjective questionnaire with respect to pain, appearance of the finger, and satisfaction. Complications were recorded.
Results: In the silicone group, the average preoperative PIPJ range of motion (ROM) was 11 degrees /64 degrees (extension/flexion) and the average postoperative ROM was 13 degrees /62 degrees . In the pyrolytic carbon group, the average preoperative PIPJ ROM was 11 degrees /63 degrees and the average postoperative ROM was 13 degrees /66 degrees . Eleven of 20 joints in the silicone group and 4 of 19 joints in the pyrolytic carbon group had a coronal plane deformity as defined by angulation of the PIPJ > or =10 degrees . The average coronal plane deformity was 12 degrees in the silicone group and 2 degrees in the pyrolytic carbon group. The difference was statistically significant. In the silicone group, 3 of 22 joints required additional surgery. Two implants in one patient were removed and the PIPJ fused, and one implant was permanently removed for sepsis. In the pyrolytic carbon group, 8 of 19 joints squeaked, and there were 2 early postoperative dislocations and 2 implants with radiographic loosening. To date, there has been no revision surgery. Both groups had good pain relief. Patients were generally satisfied with the appearance of their joints in the pyrolytic carbon arm; however, satisfaction with appearance was variable in the silicone group. Nine of 13 patients in the silicone group and 6 of 7 patients in the pyrolytic carbon group would have the procedure again.
Conclusions: Both implants provide excellent pain relief and comparable postoperative ROM. Complications were implant specific. The results of this series show promise for the pyrolytic carbon PIPJ resurfacing arthroplasty but did not clearly demonstrate superiority compared with the silicone implant.
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http://dx.doi.org/10.1016/j.jhsa.2007.04.006 | DOI Listing |
Materials (Basel)
November 2024
Zhejiang Key Laboratory of Data-Driven High-Safety Energy Materials and Applications, Ningbo Key Laboratory of Special Energy Materials and Chemistry, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, China.
This study investigated the influence of preformed composition and pore size on the microstructure and properties of SiC/SiC composites fabricated via reactive melt infiltration (RMI). The process began with the impregnation of SiC fiber cloth with phenolic resin, followed by lamination and pyrolysis. Subsequent steps included further impregnations with phenolic resin, SiC slurry, and carbon black slurry, each followed by additional pyrolysis.
View Article and Find Full Text PDFACS Environ Au
November 2024
Department of Environmental & Resource Engineering, Technical University of Denmark, DK-2800 Kgs. Lyngby, Denmark.
Microbial electrosynthesis of HO offers an economical and eco-friendly alternative to the costly and environmentally detrimental anthraquinone process. Three-dimensional (3D) electrodes fabricated through additive manufacturing demonstrate significant advantages over carbon electrodes with two-dimensional (2D) surfaces in microbial electrosynthesis of HO. Nevertheless, the presence of oxygen-containing free acidic groups on the prototype electrode surface imparts hydrophilic properties to the electrode, which affects the efficiency of the two-electron oxygen reduction reaction for HO generation.
View Article and Find Full Text PDFWaste Manag
January 2025
School of Environmental Science and Engineering, Sun Yat-Sen University, 135 Xingang Xi Road, Guangzhou 510275, China. Electronic address:
In order to achieve the goal of dual-carbon strategy, China has vigorously developed the photovoltaic industry. However, the life cycle of photovoltaic panels is limited, resulting in a large number of waste photovoltaic laminated modules. Waste photovoltaic laminated modules contain rich metallic and organic resources, and have high recycling value.
View Article and Find Full Text PDFSci Technol Adv Mater
October 2024
Department of Mechanical Engineering, Indian Institute of Technology, Jodhpur, India.
3D printing has emerged as a highly efficient process for fabricating electrodes in hydrogen evolution through water splitting, whereas metals are the most popular choice of materials in hydrogen evolution reactions (HER) due to their catalytic activity. However, current 3D printing solutions face challenges, including high cost, low surface area, and sub-optimal performance. In this work, we introduce metal-deposited 3D printed pyrolytic carbon (PyC) as a facile and cost-effective HER electrode.
View Article and Find Full Text PDFLangmuir
November 2024
School of Chemistry and Chemical Engineering, Guizhou University, and Collaborative Innovation Center of Guizhou Province for Efficient Utilization of Phosphorus and Fluorine Resources, Guiyang 550025, China.
Titanium dioxide (TiO) as an anode material for lithium-ion batteries (LIBs) has the advantages of tiny volume expansion, high operating voltage, and outstanding safety performance. However, due to the low conductivity of TiO and the slow diffusion rate of lithium ions (Li), it is limited in the application of LIBs. Therefore, waxberry-like TiO comodified by pyrolytic carbon coating and carbon nanotubes was prepared in this work.
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