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Beddoe M, Gölz T, Barkey M, Bau E, Godejohann M, Maier SA, Keilmann F, Moldovan M, Prodan D, Ilie N, Tittl A. Probing the micro- and nanoscopic properties of dental materials using infrared spectroscopy: A proof-of-principle study. Acta Biomater 2023; 168:309-322. [PMID: 37479158 DOI: 10.1016/j.actbio.2023.07.017] [Citation(s) in RCA: 3] [Impact Index Per Article: 1.5] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/05/2023] [Revised: 07/12/2023] [Accepted: 07/14/2023] [Indexed: 07/23/2023]
Abstract
The preservation of oral health over a person's lifespan is a key factor for a high quality of life. Sustaining oral health requires high-end dental materials with a plethora of attributes such as durability, non-toxicity and ease of application. The combination of different requirements leads to increasing miniaturization and complexity of the material components such as the composite and adhesives, which makes the precise characterization of the material blend challenging. Here, we demonstrate how modern IR spectroscopy and imaging from the micro- to the nanoscale can provide insights on the chemical composition of the different material sections of a dental filling. We show how the recorded IR-images can be used for a fast and non-destructive porosity determination of the studied adhesive. Furthermore, the nanoscale study allows precise assessment of glass cluster structures and distribution within their characteristic organically modified ceramic (ORMOCER) matrix and an assessment of the interface between the composite and adhesive material. For the study we used a Fourier-Transform-IR (FTIR) microscope and a quantum cascade laser-based IR-microscope (QCL-IR) for the microscale analysis and a scattering-type scanning near-field optical microscopy (s-SNOM) for the nanoscale analysis. The paper ends with an in-depth discussion of the strengths and weaknesses of the different imaging methods to give the reader a clear picture for which scientific question the microscopes are best suited for. STATEMENT OF SIGNIFICANCE: Modern resin-based composites for dental restoration are complex multi-compound materials. In order to improve these high-end materials, it is important to investigate the molecular composition and morphology of the different parts. An emergent method to characterize these materials is infrared spectroscopic imaging, which combines the strength of infrared spectroscopy and an imaging approach known from optical microscopy. In this work, three state of the art methods are compared for investigating a dental filling including FTIR- and quantum cascade laser IR-imaging microscopy for the microscale and scattering-type scanning near-field optical microscopy for the nanoscale.
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Affiliation(s)
- Max Beddoe
- Chair in Hybrid Nanosystems, Nano-Institute Munich, Faculty of Physics, Ludwig Maximilians-University Munich, Munich 80539, Germany; Institute of Applied Physics, Abbe Center of Photonics, Friedrich Schiller University Jena, Jena 07745, Germany; Institute of Solid State Physics, Friedrich Schiller University Jena, Jena 07743, Germany
| | - Thorsten Gölz
- Chair in Hybrid Nanosystems, Nano-Institute Munich, Faculty of Physics, Ludwig Maximilians-University Munich, Munich 80539, Germany
| | - Martin Barkey
- Chair in Hybrid Nanosystems, Nano-Institute Munich, Faculty of Physics, Ludwig Maximilians-University Munich, Munich 80539, Germany
| | - Enrico Bau
- Chair in Hybrid Nanosystems, Nano-Institute Munich, Faculty of Physics, Ludwig Maximilians-University Munich, Munich 80539, Germany
| | | | - Stefan A Maier
- Chair in Hybrid Nanosystems, Nano-Institute Munich, Faculty of Physics, Ludwig Maximilians-University Munich, Munich 80539, Germany; School of Physics and Astronomy, Monash University, Clayton, Victoria 3800, Australia; Department of Physics, Imperial College London, London SW7 2AZ, United Kingdom
| | - Fritz Keilmann
- Chair in Hybrid Nanosystems, Nano-Institute Munich, Faculty of Physics, Ludwig Maximilians-University Munich, Munich 80539, Germany
| | - Marioara Moldovan
- Babes-Bolyai University, Institute of Chemistry Raluca Ripan, Cluj-Napoca, Romania
| | - Doina Prodan
- Babes-Bolyai University, Institute of Chemistry Raluca Ripan, Cluj-Napoca, Romania
| | - Nicoleta Ilie
- Department of Conservative Dentistry and Periodontology, University Hospital, LMU Munich, Germany.
| | - Andreas Tittl
- Chair in Hybrid Nanosystems, Nano-Institute Munich, Faculty of Physics, Ludwig Maximilians-University Munich, Munich 80539, Germany.
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Perricelli F, Boscaglia M, Cantiano M, Spitaleri L, Fragalà ME, Gulino A. Chemical and Morphological Modifications Induced by Argon Plasma Treatments on Fluorinated Polybenzoxazole Films. ACS OMEGA 2023; 8:15586-15593. [PMID: 37151557 PMCID: PMC10157868 DOI: 10.1021/acsomega.3c00952] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Grants] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 02/13/2023] [Accepted: 03/28/2023] [Indexed: 05/09/2023]
Abstract
Fluorinated photodefinable polymers are widely employed as re-distribution layers in wafer-level packaging to produce microelectronic devices because of their suitable low dielectric constant and moisture absorption, high mechanical toughness, thermal conductivity and stability, and chemical inertness. Typically, fluorinated photodefinable polybenzoxazoles (F-PBOs) are the most used in this field. In the present work, we investigated by atomic force microscopy, X-ray photoelectron spectroscopy, and Fourier transform infrared spectroscopy the morphological and chemical modifications induced by Ar plasma treatments on F-PBO films. This process, used to remove surface contaminant species, as well as increase the polymeric surface roughness, to improve the adhesion to the other components during electronic packaging, is a crucial step during the manufacturing of some microelectronic devices. We found that argon plasma treatments determine the wanted drastic increase of the polymer surface roughness but, in the presence of a patterned silver layer on F-PBO, needed for the fabrication of electric contacts in microelectronic devices, also induce some unwanted formation of silver fluoride species.
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Affiliation(s)
| | | | | | - Luca Spitaleri
- STMicroelectronics
Stradale Primosole, 50, 95121 Catania, Italy
| | - Maria Elena Fragalà
- Department
of Chemical Sciences, University of Catania, Viale Andrea Doria 6, 95125 Catania, Italy
- INSTM
UdR of Catania, Viale Andrea Doria 6, 95125 Catania, Italy
| | - Antonino Gulino
- Department
of Chemical Sciences, University of Catania, Viale Andrea Doria 6, 95125 Catania, Italy
- INSTM
UdR of Catania, Viale Andrea Doria 6, 95125 Catania, Italy
- . Tel.: +39-095-7385067. Fax. +39-095-580138
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Li JQ, Li WS, Zhang WT, Zhu S, Luo CY, Liu WS, Zhang LY. Enhancing Molecular Chain Entanglement and π-π Stacking Toward the Improvement of Shape Memory Performance of Polyimide. CHINESE JOURNAL OF POLYMER SCIENCE 2023. [DOI: 10.1007/s10118-023-2911-9] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 02/06/2023]
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Fan R, Yan T, Su J, Zhao H, Zha L, Zhou J, Zhu S. A water-soluble PAAs sizing agent for enhancing interfacial adhesion of carbon fiber reinforced polyphenylene sulfide composites (CF/PPS). JOURNAL OF MACROMOLECULAR SCIENCE PART A-PURE AND APPLIED CHEMISTRY 2022. [DOI: 10.1080/10601325.2022.2142135] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 12/13/2022]
Affiliation(s)
- Ruyi Fan
- State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Shanghai Collaborative Innovation Center of High-Performance Fibers and Composites (Province-Ministry Joint), Key Laboratory of High-Performance Fibers & Products, Ministry of Education, Center for Civil Aviation Composites, Donghua University, Shanghai, P. R. China
- Key Laboratory of Shanghai City for lightweight composites, College of Materials Science and Engineering, Donghua University, Shanghai, P. R. China
| | - Tianwen Yan
- State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Shanghai Collaborative Innovation Center of High-Performance Fibers and Composites (Province-Ministry Joint), Key Laboratory of High-Performance Fibers & Products, Ministry of Education, Center for Civil Aviation Composites, Donghua University, Shanghai, P. R. China
- Key Laboratory of Shanghai City for lightweight composites, College of Materials Science and Engineering, Donghua University, Shanghai, P. R. China
| | - Jiayu Su
- State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Shanghai Collaborative Innovation Center of High-Performance Fibers and Composites (Province-Ministry Joint), Key Laboratory of High-Performance Fibers & Products, Ministry of Education, Center for Civil Aviation Composites, Donghua University, Shanghai, P. R. China
- Key Laboratory of Shanghai City for lightweight composites, College of Materials Science and Engineering, Donghua University, Shanghai, P. R. China
| | - Hui Zhao
- School of Chemical Engineering, Sichuan University, Chengdu, P. R. China
| | - Liusheng Zha
- State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Shanghai Collaborative Innovation Center of High-Performance Fibers and Composites (Province-Ministry Joint), Key Laboratory of High-Performance Fibers & Products, Ministry of Education, Center for Civil Aviation Composites, Donghua University, Shanghai, P. R. China
- Key Laboratory of Shanghai City for lightweight composites, College of Materials Science and Engineering, Donghua University, Shanghai, P. R. China
| | - Jianfeng Zhou
- Key Laboratory of Shanghai City for lightweight composites, College of Materials Science and Engineering, Donghua University, Shanghai, P. R. China
| | - Shu Zhu
- State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Shanghai Collaborative Innovation Center of High-Performance Fibers and Composites (Province-Ministry Joint), Key Laboratory of High-Performance Fibers & Products, Ministry of Education, Center for Civil Aviation Composites, Donghua University, Shanghai, P. R. China
- Key Laboratory of Shanghai City for lightweight composites, College of Materials Science and Engineering, Donghua University, Shanghai, P. R. China
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Zhang HY, Yuan LL, Hong WJ, Yang SY. Improved Melt Processabilities of Thermosetting Polyimide Matrix Resins for High Temperature Carbon Fiber Composite Applications. Polymers (Basel) 2022; 14:965. [PMID: 35267791 PMCID: PMC8912466 DOI: 10.3390/polym14050965] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/10/2022] [Revised: 02/22/2022] [Accepted: 02/22/2022] [Indexed: 11/29/2022] Open
Abstract
With the goal of improving processability of imide oligomers and achieving of high temperature carbon fiber composite, a series of Thermosetting Matrix Resin solutions (TMR) were prepared by polycondensation of aromatic diamine (3,4'-oxybisbenzenamine, 3,4-ODA) and diester of biphenylene diacid (BPDE) using monoester of 4-phenylethynylphthalic acid (PEPE) as end-capping agent in ethyl alcohol as solvent to afford phenylethynyl-endcapped poly(amic ester) resins with calculated molecular weight (Calc'd Mw) of 1500-10,000. Meanwhile, a series of reactive diluent solutions (RDm) with Calc'd Mw of 600-2100 were also prepared derived from aromatic diamine (4,4'-oxybisbenzenamine, 4,4-ODA), diester of asymmetrical biphenylene diacid (α-BPDE) and monoester of 4-phenylethynylphthalic acid (PEPE) in ethyl alcohol. Then, the TMR solution was mixed with the RDm solution at different weight ratios to afford a series of A-staged thermosetting blend resin (TMR/RDm) solutions for carbon fiber composites. Experimental results demonstrated that the thermosetting blend resins exhibited improved melt processability and excellent thermal stability. After being thermally treated at 200 °C/1 h, the B-staged TMR/RDm showed very low melt viscosities and wider processing window. The minimum melt viscosities of ≤50 Pa·s was measured at ≤368 °C and the temperature scale at melt viscosities of ≤100 Pa·s were detected at 310-390 °C, respectively. The thermally cured neat resins at 380 °C/2 h showed a great combination of mechanical and thermal properties, including tensile strength of 84.0 MPa, elongation at breakage of 4.1%, and glass transition temperature (Tg) of 423 °C, successively. The carbon fiber reinforced polyimide composite processed by autoclave technique exhibited excellent mechanical properties both at room temperature and 370 °C. This study paved the way for the development of high-temperature resistant carbon fiber resin composites for use in complicated aeronautical structures.
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Affiliation(s)
- Hao-Yang Zhang
- Key Laboratory of Science and Technology on High-Tech Polymer Materials, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China; (H.-Y.Z.); (W.-J.H.)
- School of Chemical Sciences, University of Chinese Academy of Sciences, Beijing 100190, China
| | - Li-Li Yuan
- Key Laboratory of Science and Technology on High-Tech Polymer Materials, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China; (H.-Y.Z.); (W.-J.H.)
| | - Wei-Jie Hong
- Key Laboratory of Science and Technology on High-Tech Polymer Materials, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China; (H.-Y.Z.); (W.-J.H.)
| | - Shi-Yong Yang
- Key Laboratory of Science and Technology on High-Tech Polymer Materials, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China; (H.-Y.Z.); (W.-J.H.)
- School of Chemical Sciences, University of Chinese Academy of Sciences, Beijing 100190, China
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