At-home tooth whitening solutions with good efficacy and biosafety are highly desirable to meet the ever-growing demand for aesthetic dentistry. As a promising alternative to the classic peroxide bleaching that may damage tooth enamel and gums, piezocatalysis has been recently proposed to realize non-destructive whitening by toothbrushing with piezoelectrical particles. However, traditional particles either pose potential threats to human health or exhibit low piezoresponse to weak mechanical stimuli in the toothbrushing. Here, biocompatible and biodegradable polylactide particles constructed from interlocking crystalline lamellae have been hierarchically designed as next-generation whitening materials with ultra-high piezocatalytic activity and biosafety. By simultaneously controlling the chain conformation within lamellae and the porosity of such unique lamellae network at the nano- and microscales, the particles possessing unprecedented piezoelectricity have been successfully prepared due to the markedly increased dipole alignment, mechanical deformability, and specific surface area. The piezoelectric output can reach as high as 18.8 V, nearly 50 times higher than that of common solid polylactide particles. Consequently, their piezocatalytic effect can be readily activated by a toothbrush to rapidly clean the teeth stained with black tea and coffee, without causing detectable enamel damage. Furthermore, these particles have no cytotoxicity. This work presents a paradigm for achieving high piezoelectric activity in polylactide, which enables its practical application in tooth whitening.
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http://dx.doi.org/10.1021/acs.biomac.2c01252 | DOI Listing |
Int J Mol Sci
March 2025
Samyang Holdings Biopharmaceutical Group R&D Center, Seongnam 13488, Republic of Korea.
In regard to both natural aging and photoaging caused by UV radiation, a decrease in skin collagen and elastin fibers results in the loss of soft tissue volume. Biodegradable polymer fillers have been used to overcome this problem, but the slow rate of reconstruction and particle agglomeration has limited this approach. The DMSB01 filler, which consists of poly d-l-lactic acid (PDLLA) with a methoxy polyethylene glycol (mPEG) initiator, was created to address this issue.
View Article and Find Full Text PDFSci Rep
March 2025
Department of Environmental and Resource Engineering, Technical University of Denmark, Bygningstorvet Building 115, 2800, Kgs. Lyngby, Denmark.
Biodegradable plastics are often promoted as sustainable alternatives to conventional plastics. Nevertheless, significant knowledge gaps exist regarding their degradation under relevant conditions, particularly when compounded into commercial products. To this end, the present research investigates the disintegration of ten commercially available biodegradable plastic products under simulated industrial composting conditions.
View Article and Find Full Text PDFAnnu Int Conf IEEE Eng Med Biol Soc
July 2024
Organ-on-a-chip technology allows for the examination of cell cultures within dynamic systems to better understand biological pathways. The three-dimensional (3D) microenvironment in which cells reside influences their behavior and maturation via mechanobiological cues. Computational fluid dynamics can be used to model the incorporation of biomaterials and 3D constructs as well as in the spreading of cells in microfluidic devices.
View Article and Find Full Text PDFCarbohydr Polym
April 2025
School of Chemical, Petroleum and Gas Engineering, Iran University of Science and Technology (IUST), P.O. Box 16844, 13114 Tehran, Iran. Electronic address:
This study introduces a novel, industrially viable, eco-friendly packaging film based on polylactic acid (PLA) and thermoplastic starch (TPS), incorporated with cochineal dye and clove essential oil (CEO), to simultaneously monitor spoilage and preserve high-protein foods, such as shrimp. Citric acid-modified TPS showed significant improvements in particle dispersion, interphase adhesion, and size reduction when blended with PLA. Incorporating 20 % modified TPS into PLA significantly enhanced ammonia sensitivity, achieving faster and more uniform color changes, while improving tensile strength by 32.
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February 2025
Department of Biological Bases of Food and Feed Technology, University of Life Sciences in Lublin, 28 Głeboka St., 20-612, Lublin, Poland.
In recent years, 3D printing has become a rapidly developing manufacturing technology with huge potential and is influencing many industries, such as engineering, art, education, medicine, aerospace, and many more. Of the many technologies, the one used most frequently is the FDM (fused deposition modeling) method, which is widely available, relatively simple and inexpensive. The essence of this method is to extrude a thermoplastic material through a heated nozzle in a controlled manner.
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