13 results match your criteria: "Guilin University of Technology (GUT)[Affiliation]"

Bio-based molecules with ionically bonded phosphorus toward ultra-high flame-retardant efficiency of PLA plastics.

Int J Biol Macromol

December 2024

College of Materials Science and Engineering, Hubei Key Laboratory for New Textile Materials and Applications, Wuhan Textile University, Wuhan 430200, China. Electronic address:

The fire safety of polymer plastics has become a global consensus, and creating a more efficient flame-retardant network is in line with the trend. Here, a direct strategy for low usage of flame retardants and fire-resistant PLA plastics was proposed. The bio-based flame-retardant PDT, which was formed by ionic bonding of phytic acid and organic amine molecules, had high flame-retardant efficiency for PLA.

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Phytic acid-induced durable fire-proof and hydrophobic complex coating for versatile cotton fabrics.

Int J Biol Macromol

November 2024

Key Laboratory of Natural and Biomedical Polymer Materials (Guilin University of Technology), College of Materials Science and Engineering, Guilin University of Technology (GUT), Guilin 541004, China. Electronic address:

To address the current development requirements for multifunctional cotton fabrics, a phytic acid-induced flame-retardant hydrophobic coating containing nitrogen (N), phosphorus (P), and silicon (Si) was grafted on the surface of cotton fabrics using a facile step-by-step immersion method. The limiting oxygen index value improved to 31.2 %, decreasing to 26.

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Hierarchical Porous BiTe@C for Wide-Temperature-Range Aqueous Zn-Based Batteries with Air-Recharging Capability.

ACS Nano

October 2024

Center for Nanoscale Characterization & Devices (CNCD), Wuhan National Laboratory for Optoelectronics (WNLO) & School of Physics, Huazhong University of Science and Technology (HUST), Wuhan 430074, China.

Article Synopsis
  • * The study introduces efficient BiTe@C cathodes with a carbon paper substrate that enhance energy storage mechanisms, allowing for consistent battery performance in varying temperatures from -10 to 45 °C.
  • * The BiTe@C cathodes significantly improve air-rechargeability, achieving a discharge capacity of 264.20 mA h g after 11 hours of self-charging, and successfully powering devices like a timer and LED with rapid air self-charging.
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Article Synopsis
  • - Metal oxides, specifically a bimetallic oxide called CuMnO, were developed for activating peroxymonosulfate (PMS) to effectively break down organic dyes like Congo red while maintaining high efficiency and stability across multiple uses.
  • - The newly created hydrogel beads, CS-Ca@PEI/CuMnO, demonstrated an impressive 91% degradation of Congo red at neutral pH, and retained 86.9% efficiency after three use cycles, indicating their resilience in practical applications.
  • - Comprehensive tests revealed the presence of specific reactive radicals aiding in degradation, alongside the identification of ten intermediates formed during the process, showcasing the catalyst's potential for treating industrial wastewater pollutants.
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Here, a novel multifunctional coating containing bio-based phytic acid (PA), L-glutamic acid (L-Glu), and trimesoyl chloride (TMC) is constructed by a simple soaking strategy, giving cotton fabrics excellent flame retardancy, washability, and antibacterial properties. The coating layer on the cotton surface was prepared via the electrostatic and hydrogen bonding between PA and L-Glu, accompanied by the interface polymerization between PA, L-Glu, and TMC. Among them, the limiting oxygen index value of the treated cotton fabrics (C and C-TMC) was as high as 40 %.

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A novel P/N/Si/Zn-containing hybrid flame retardant for enhancing flame retardancy and smoke suppression of epoxy resins.

RSC Adv

March 2024

Key Laboratory of New Processing Technology for Non-Ferrous Metals and Materials, Ministry of Education, College of Materials Science and Engineering, Guilin University of Technology (GUT) Guilin 541004 China

Currently, additively efficient flame retardants are being developed to enhance the smoke suppression, flame retardancy, and thermal properties of composite materials. To this end, the current study designed and prepared a novel P/N/Si/Zn-containing organic-inorganic hybrid denoted as APHZ. Its inorganic part was 2-methylimidazole zinc salt (ZIF-8), which improved its smoke suppression and catalytic carbonization.

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A novel approach for improving the flame retardancy, smoke suppression and mechanical properties of epoxy resins (EPs) has been proposed by incorporating functionalized hollow mesoporous silica microcapsules (SHP) loaded with phosphorous silane flame retardants (SCA) and coated with polydopamine (PDA) and transition metals. The proposed approach involves a multi-level structure that combines several mechanisms to enhance the flame-retardant properties of EP. The physical barrier provided by silica serves to impede heat and mass transfer during combustion, while the catalytic carbonization effect of phosphorus and transition metals promotes the formation of a protective char layer, which acts as a barrier to further flame propagation.

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One of the current challenges in the development of flame retardants is the preparation of an environmentally friendly multi-element synergistic flame retardant to improve the flame retardancy, mechanical performance, and thermal performance of composites. This study synthesized an organic flame retardant (APH) using (3-aminopropyl) triethoxysilane (KH-550), 1,4-phthalaadehyde, 1,5-diaminonaphthalene, and 9,10-dihydro-9-oxa-10-phosphaphenanthrene-10-oxide (DOPO) as raw materials, through the Kabachnik-Fields reaction. Adding APH to epoxy resin (EP) composites could greatly improve their flame retardancy.

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Design of P-decorated POSS towards flame-retardant, mechanically-strong, tough and transparent epoxy resins.

J Colloid Interface Sci

June 2023

College of Materials Science and Engineering, Guilin University of Technology (GUT), Guilin 541004, China. Electronic address:

Epoxy resins (EPs) are known for their durability, strength, and adhesive properties, which make them a versatile and popular material for use in a variety of applications, including chemical anticorrosion, small electronic devices, etc. However, EP is highly flammable due to its chemical nature. In this study, phosphorus-containing organic-inorganic hybrid flame retardant (APOP) was synthesized by introducing 9, 10-dihydro-9-oxa-10‑phosphaphenathrene (DOPO) into cage-like octaminopropyl silsesquioxane (OA-POSS) via Schiff base reaction.

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Corrigendum to "Interfacial engineering to construct P-loaded hollow nanohybrids for flame-retardant and high-performance epoxy resins" [J. Colloid Interface Sci. 628(Part B) (2022) 851-863].

J Colloid Interface Sci

May 2023

The Collaborative Innovation Center for Eco-Friendly and Fire-Safety Polymeric Materials (MoE), National Engineering Laboratory of Eco-Friendly Polymeric Materials (Sichuan), College of Chemistry, Sichuan University, Chengdu 610064, China. Electronic address:

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Corrigendum to "Growth of copper organophosphate nanosheets on graphene oxide to improve fire safety and mechanical strength of epoxy resins" [Chemosphere 311 (2023) 137047].

Chemosphere

March 2023

The Collaborative Innovation Center for Eco-Friendly and Fire-Safety Polymeric Materials (MoE), National Engineering Laboratory of Eco-Friendly Polymeric Materials (Sichuan), College of Chemistry, Sichuan University, Chengdu, 610064, China. Electronic address:

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Growth of copper organophosphate nanosheets on graphene oxide to improve fire safety and mechanical strength of epoxy resins.

Chemosphere

January 2023

The Collaborative Innovation Center for Eco-Friendly and Fire-Safety Polymeric Materials (MoE), National Engineering Laboratory of Eco-Friendly Polymeric Materials (Sichuan), College of Chemistry, Sichuan University, Chengdu, 610064, China. Electronic address:

With the high integration of electronic products in our daily life, high-performance epoxy resins (EP) with excellent flame retardancy, smoke suppression, and mechanical strength are highly desired for applications. In this study, copper organophosphate nanosheets were evenly grown on the surface of graphene oxide (GO) via a self-assembly process based on coordination bonding and electrostatic interactions. The resultant nanohybrid endowed EP with satisfactory flame retardant effect and improved mechanical properties.

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Interfacial engineering to construct P-loaded hollow nanohybrids for flame-retardant and high-performance epoxy resins.

J Colloid Interface Sci

December 2022

The Collaborative Innovation Center for Eco-Friendly and Fire-Safety Polymeric Materials (MoE), National Engineering Laboratory of Eco-Friendly Polymeric Materials (Sichuan), College of Chemistry, Sichuan University, Chengdu 610064, China. Electronic address:

Nano flame retardants, as one of the key flame retardants in recent years, have been limited by poor efficiency and weak compatibility. In this study, we propose an interfacial hollow engineering strategy to tackle this problem by assembling P-phytic acid into the hollow cavity of mesoporous SiO grafted with a polydopamine transition metal. In this design, the grafted polydopamine-metal coatings on the hybrids can greatly improve their interface compatibility with the polymer matrix, while the loaded phytic acid in the cavity contributes to enhance flame retardancy.

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