Characterization, Shear Bond Strength Assessment, and Antibacterial Effects of an Orthodontic Composite Containing Stannous Oxide (SnO2) Nanoparticles.

Cureus

Orthodontics and Dentofacial Orthopedics, Saveetha Dental College and Hospitals, Saveetha Institute of Medical and Technical Sciences, Saveetha University, Chennai, IND.

Published: February 2024

Background This study aimed to determine the antibacterial properties of orthodontic adhesive infused with stannous oxide nanoparticles (NPs) against and bacteria, along with assessing the shear bond strength (SBS) of this composite when compared to conventional, non-infused composites. Methods A concentration of 1% w/w tin dioxide NPs (SnO NPs) was added to Transbond XT Orthodontic Adhesive. This modified composite material was used to prepare composite discs for the evaluation of its antibacterial properties against bacteria and bacteria using the biofilm inhibition test. To evaluate the SBS of this modified adhesive material, 50 extracted premolar teeth were collected and divided into two groups, with 25 teeth in each group (n = 25). Orthodontic stainless steel brackets were bonded to these extracted teeth using the modified composite. A comparative analysis of the SBS of the nano-infused composite group was then performed against that of the control group using an Instron universal testing machine. Results Growth inhibition zones were produced around the composite discs infused with SnO NPs for both bacterial strains. After performing the biofilm inhibition test, it can be inferred that the nano-infused composite is capable of inhibiting the bacterial count better than the control group. A statistically significant difference was observed between the two groups, with the SBS of the nano-infused composite being higher (16.89 MPa) than the non-infused composite adhesive (15.49 MPa). Conclusion The antibacterial activity of orthodontic composites modified with SnO NPs was significant compared with conventional composites. The control group showed less SBS when compared to the NP-infused composite, with a statistically significant difference in mean SBS values between both groups.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10973796PMC
http://dx.doi.org/10.7759/cureus.54977DOI Listing

Publication Analysis

Top Keywords

sno nps
12
nano-infused composite
12
control group
12
composite
11
shear bond
8
bond strength
8
stannous oxide
8
antibacterial properties
8
orthodontic adhesive
8
compared conventional
8

Similar Publications

Oxygenated VOC Detection Using SnO Nanoparticles with Uniformly Dispersed BiO.

Nanomaterials (Basel)

December 2024

Department of Advanced Materials Science and Engineering, Faculty of Engineering Sciences, Kyushu University, Kasuga 816-8580, Fukuoka, Japan.

BiO particles are introduced as foreign additives onto SnO nanoparticles (NPs) surfaces for the efficient detection of oxygenated volatile organic compounds (VOCs). BiO-loaded SnO materials are prepared via the impregnation method followed by calcination treatment. The abundant BiO/SnO interfaces are constructed by the uniform dispersion of BiO particles on the SnO surface.

View Article and Find Full Text PDF

Dual-mode detection of human immunoglobulin via copper oxide nanozyme catalysis fluorescent species generation and photoelectrochemical alteration in ZnInS/SnO-based system.

Anal Chim Acta

January 2025

Key Laboratory of Chemical Biology & Traditional Chinese Medicine Research (Ministry of Education, China), College of Chemistry and Chemical Engineering, Hunan Normal University, Changsha, 410081, PR China. Electronic address:

Human immunoglobulin (HIgG) has gained recognition as a crucial biomarker diagnosing and treating various diseases, particularly in identifying elevated serum levels in conditions like measles and pneumococcal disease. Traditional detection methods, however, are often hindered by inefficiencies, high costs, and potential inaccuracies, underscoring the urgent need for more sensitive, efficient, accurate, and self-calibration methods for HIgG. Here, a novel ZnInS/SnO composites was synthesized, featuring uniformly dispersed SnO nanoparticles on the flower-like ZnInS structure, resulting in a type II heterojunction that promotes the separation and transfer of photogenerated carriers.

View Article and Find Full Text PDF
Article Synopsis
  • - Atomically precise metal nanoclusters (NCs) are interesting for their unique structures and catalytic potential, but they have issues like instability and self-aggregation.
  • - This research presents a method to stabilize metal NCs by anchoring them to a metal oxide matrix, creating a hollow core-shell structure through thermal treatment.
  • - The resulting metal NPs@metal oxide heterostructures show improved catalytic activity and stability for reducing aromatic nitro compounds, suggesting a new approach to utilize the instability of metal NCs in catalysis.
View Article and Find Full Text PDF

This study investigates a class of materials known as polymer nanodielectrics, which are formed by incorporating ceramic fillers into polymers. These materials offer the unique advantage of tunable electrical and optical properties. The research focuses on the incorporation of high-purity stannic oxide nanoparticles (SnO NPs) into a ternary blend matrix of hydroxypropyl methylcellulose (HPMC) and poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS) using a solution casting method.

View Article and Find Full Text PDF

Tandem Upgrading of Bio-Furans to Benzene, Toluene, and p-xylene by PtSn Intermetallic Coupling Ordered Mesoporous SnO Catalyst.

Adv Mater

November 2024

State Key Laboratory of Pulp and Paper Engineering, School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou, 510640, China.

Benzene, toluene, and p-xylene (BTpX) are among the most important commodity chemicals, but their productions still heavily rely on fossil resources and thus pose serious environmental burdens and energy crisis. Herein, the tandem upgrading of bio-furans is reported to high-yield BTpX by rationally constructing a versatile PtSn intermetallic coupling ordered-mesoporous SnO (OM-SnO) catalyst. It is shown that with increasing reduction temperature from 200 to 350°C, Pt nanoparticles (NPs) are first formed on OM-SnO, then converted to PtSn intermetallic nanoparticles (iNPs), and finally to PtSn iNPs with a gradually-thickened SnO overlayer.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!