4.7 Article

Durable flame-retardant cotton fabrics with tannic acid complexed by various metal ions

Related references

Note: Only part of the references are listed.
Article Nanoscience & Nanotechnology

Bio-Based Flame-Retardant Coatings Based on the Synergistic Combination of Tannic Acid and Phytic Acid for Nylon-Cotton Blends

Sourabh Kulkarni et al.

Summary: Natural and synthetic polymeric fibers are widely used for fabric production, with nyco being a 50-50% blend of nylon 66 and cotton often used for military uniforms due to its durability and comfort. A novel surface functionalization method using a combination of bio-based materials, tannic acid (TA) and phytic acid (PA), was employed to impart flame-retardant properties to the nyco fabric. The synergistic combination of TA and PA enhances char formation, leading to improved flame retardancy for nyco.

ACS APPLIED MATERIALS & INTERFACES (2021)

Article Materials Science, Paper & Wood

Eco-friendly and efficient flame-retardant cotton fabric based on a multi-hydroxyl hyperbranched phosphoramidate

Chao Zhang et al.

Summary: A multi-hydroxyl containing hyperbranched phosphoramidate (HPAE) was successfully synthesized and used for preparing flame-retardant cotton fabrics, showing excellent flame retardancy and thermal stability after treatment. The treated fabrics also exhibited good washing durability and potential for friendly flame-retardant textiles.

CELLULOSE (2021)

Article Engineering, Environmental

In-situ phosphine oxide physical networks: A facile strategy to achieve durable flame retardant and antimicrobial treatments of cellulose

Rashid Nazir et al.

Summary: This research developed a facile methodology to durably modify cellulose fibers by forming in-situ phosphine oxide macromolecular physical networks. The treated fibers exhibited excellent flame retardant and antimicrobial properties, and remained durable after 50 laundry cycles. NMR and SEM analysis confirmed the in-situ formation of phosphine oxide macromolecules within the cellulose fibers.

CHEMICAL ENGINEERING JOURNAL (2021)

Article Engineering, Multidisciplinary

High strength, low flammability, and smoke suppression for epoxy thermoset enabled by a low-loading phosphorus-nitrogen-silicon compound

Wenhui Rao et al.

Summary: The novel phosphorus/nitrogen-containing phenylsiloxane macromolecule (DP-PPD) serves as a multi-functional additive to enhance the mechanical strength, flame retardancy, and smoke suppression performance of EP resin. With a low loading of DP-PPD, significant improvements in impact strength, flexural strength, and flexural modulus of EP were achieved. Combining aromatic rings, siloxane, and DOPO units, DP-PPD synergistically promotes the formation of a P-Si-containing hybrid char layer for EP resins during combustion, leading to satisfactory flame retardancy and smoke suppression.

COMPOSITES PART B-ENGINEERING (2021)

Article Engineering, Environmental

Combined effect of silicate coating and phosphate loading on the performance improvement of a keratinous fiber-based flame retardant

Daeseung Jung et al.

Summary: In this study, an organic-inorganic hybrid material with phosphate loaded chicken feather fibers (CFF) and layered silicate outer coatings was developed as an efficient intumescent flame retardant system for polypropylene. The addition of a small amount of silicate led to a significant improvement in flame retardancy compared to phosphate only modification, achieving a 27 wt% reduction in phosphate while maintaining the same level of flame retardancy for PP. The loaded phosphate showed 14% higher efficiency compared to a commercial IFR, ammonium polyphosphate, and thermal analysis confirmed the formation of a robust char residue during combustion.

CHEMICAL ENGINEERING JOURNAL (2021)

Article Engineering, Environmental

Highly efficient, transparent, and environment-friendly flame-retardant coating for cotton fabric

Wenhui Rao et al.

Summary: The study introduces a highly efficient, environmentally friendly flame-retardant coating method without halogen and formaldehyde, which achieves high transparency and colorlessness at low loading and demonstrates high flame-retardant efficiency on cotton fabrics.

CHEMICAL ENGINEERING JOURNAL (2021)

Article Nanoscience & Nanotechnology

Facile Strategy to Fabricate the Flame Retardant Polyamide 66 Fabric Modified with an Inorganic-Organic Hybrid Structure

Wei Liu et al.

Summary: This study successfully incorporated Fe3+ ions onto the surface of PA fabric using M/P technology, resulting in excellent flame retardancy and dripping resistance of the fabric. The treated fabric exhibited the highest LOI value and no melt dripping during flame retardant tests. A composite thermal barrier structure was observed on the burnt fabric surface, contributing to the significant enhancement in fire performance.

ACS APPLIED MATERIALS & INTERFACES (2021)

Article Materials Science, Paper & Wood

Eco-friendly, efficient and durable fireproof cotton fabric prepared by a feasible phytic acid grafting route

Yanan Ma et al.

Summary: By feasible chemical grafting of phytic acid (PA), eco-friendly and efficient fireproof cotton fabrics were prepared, exhibiting excellent thermal stability and flame resistance with outstanding washing durability. Tests showed self-extinguishing behavior and reduced smoke production of the treated cotton fabrics, indicating significantly improved flame retardancy.

CELLULOSE (2021)

Article Materials Science, Multidisciplinary

A novel efficient nonflammable coating containing g-C3N4 and intumescent flame retardant fabricated via layer-by-layer assembly on cotton fiber

Zhongying Ma et al.

Summary: A novel flame-retardant coating assembled on cotton fabric surface significantly enhanced thermal stability and flame retardancy. Different composite coatings were deposited onto the fabric by layer-by-layer self-assembled technique, demonstrating outstanding performance in thermal stability and flame retardancy.

JOURNAL OF MATERIALS SCIENCE (2021)

Article Engineering, Environmental

Construction of durable eco-friendly biomass-based flame-retardant coating for cotton fabrics

Ai-Ning Zhang et al.

Summary: The novel eco-friendly biomass-based coating developed inspired by the classic dye-fixing process provides durable flame retardancy to cotton fabrics without using traditional toxic elements or solvents, achieving high flame retardance by promoting the formation of graphitized carbon layers in cotton fibers. The coating showed excellent durability even after repeated laundering and friction cycles, demonstrating its potential as a green flame-retardant system without hazardous compounds.

CHEMICAL ENGINEERING JOURNAL (2021)

Article Engineering, Multidisciplinary

Eco-friendly synergistic cross-linking flame-retardant strategy with smoke and melt-dripping suppression for condensation polymers

Bo-Wen Liu et al.

Summary: A novel green strategy was proposed to improve the flame retardancy of polymeric materials without using conventional flame-retardant elements, leading to a PN copolymer with significantly lower smoke and heat release rates as well as excellent anti-dripping performance. This eco-friendly synergistic cross-linking strategy offered a new perspective for the design and synthesis of polymeric materials with outstanding flame retardancy and reduced release of heat, smoke, and toxic gas.

COMPOSITES PART B-ENGINEERING (2021)

Article Nanoscience & Nanotechnology

High-Efficiency Flame Retardants of a P-N-Rich Polyphosphazene Elastomer Nanocoating on Cotton Fabric

Zhenwei Miao et al.

Summary: The study demonstrates that PDMP loaded with 29.0 wt % phosphorus and 13.1 wt % nitrogen is an ideal flame retardant for fabric materials. The PDMP-coated cotton exhibits high-efficiency flame-retardant properties, including self-extinguishing behavior and improved LOI values, with a nanolevel coating thickness providing enhanced carbonization ability.

ACS APPLIED MATERIALS & INTERFACES (2021)

Article Chemistry, Physical

Temperature-Responsive Intumescent Chemistry toward Fire Resistance and Super Thermal Insulation under Extremely Harsh Conditions

Ting Wang et al.

Summary: This study presents a smart temperature-responsive self-intumescent strategy for organic aerogels, which can rapidly form stable porous carbon at high temperatures to achieve excellent fire resistance and high-temperature thermal insulation. The aerogel can expand in real time in response to temperature/fire, resisting various heat conditions and exhibiting the best high-temperature insulating performance ever reported.

CHEMISTRY OF MATERIALS (2021)

Review Polymer Science

Tannin based polyphenolic bio-macromolecules: Creating a new era towards sustainable flame retardancy of polymers

S. Basak et al.

Summary: Bio-based flame retardants like tannin have shown great potential in the past few years in enhancing the flame retardancy of natural and synthetic polymeric materials. However, there is a lack of critical review on the flame retardant performance of tannin and tannin based plant bio-macromolecule treated textiles and polymeric substrates. More research and attention are needed in this promising field for sustainable flame retardancy.

POLYMER DEGRADATION AND STABILITY (2021)

Article Materials Science, Multidisciplinary

Development of geopolymer derived from slag waste based composite film on cotton fabric: A preliminary approach for flame retardant behavior

Apichet Sittinun et al.

Summary: The organic-inorganic hybrid composite films prepared using a simple method showed promising potential for flame retardant coatings, with the geopolymer paste successfully synthesized by adding a mixture of metakaolin and slag. The films exhibited excellent flame retardant properties and thermal stability up to 200 degrees C on cotton fabric, making them suitable candidates for flame retardant applications.

MATERIALIA (2021)

Article Chemistry, Physical

A fluorine-free method for fabricating multifunctional durable superhydrophobic fabrics

Yingchun Wang et al.

APPLIED SURFACE SCIENCE (2020)

Article Engineering, Multidisciplinary

A facile and efficient flame-retardant and smoke-suppressant resin coating for expanded polystyrene foams

Meng-En Li et al.

COMPOSITES PART B-ENGINEERING (2020)

Review Nanoscience & Nanotechnology

Flame-retardant surface treatments

Simone T. Lazar et al.

NATURE REVIEWS MATERIALS (2020)

Article Materials Science, Multidisciplinary

Fabrication of a superhydrophobic and flame-retardant cotton fabric using a DNA-based coating

Thirumalaisamy Suryaprabha et al.

JOURNAL OF MATERIALS SCIENCE (2020)

Article Polymer Science

A facile and effective flame-retardant coating for cotton fabric with α-aminodiphosphonate siloxane

Denghui Xu et al.

POLYMER DEGRADATION AND STABILITY (2020)

Article Polymer Science

Flame retardant treatments for polyamide 66 textiles: Analysis the role of phosphorus compounds

Chanchal Kumar Kundu et al.

POLYMER DEGRADATION AND STABILITY (2020)

Article Chemistry, Multidisciplinary

Thermally stable and flame-retardant poly(vinyl alcohol)/montmorillonite aerogel via a facile heat treatment

Ke Shang et al.

CHINESE CHEMICAL LETTERS (2018)

Article Green & Sustainable Science & Technology

Characterization and comparison of salt-free reactive dyed cationized cotton hosiery fabrics with that of conventional dyed cotton fabrics

Nallathambi Arivithamani et al.

JOURNAL OF CLEANER PRODUCTION (2018)

Article Materials Science, Multidisciplinary

Durable flame retardant finishing of cotton fabrics with poly(amidoamine) dendrimer using citric acid

Ali Taherkhani et al.

MATERIALS CHEMISTRY AND PHYSICS (2018)

Review Polymer Science

Sustainable fire retardancy of textiles using bio-macromolecules

Santanu Basak et al.

POLYMER DEGRADATION AND STABILITY (2016)

Article Chemistry, Multidisciplinary

A wash-durable polyelectrolyte complex that extinguishes flames on polyester-cotton fabric

Merid Haile et al.

RSC ADVANCES (2016)

Article Chemistry, Applied

Preparing cationic cotton linter cellulose with high substitution degree by ultrasonic treatment

Fulong Zhang et al.

CARBOHYDRATE POLYMERS (2015)

Article Chemistry, Applied

Layer by Layer ammonium polyphosphate-based coatings for flame retardancy of polyester-cotton blends

Federico Carosio et al.

CARBOHYDRATE POLYMERS (2012)

Article Polymer Science

Flame retardant challenges for textiles and fibres: New chemistry versus innovatory solutions

A. Richard Horrocks

POLYMER DEGRADATION AND STABILITY (2011)

Article Chemistry, Multidisciplinary

Flame Retardant Behavior of Polyelectrolyte-Clay Thin Film Assemblies on Cotton Fabric

Yu-Chin Li et al.

ACS NANO (2010)

Article Materials Science, Multidisciplinary

Metal catalysed intumescence:: characterisation of the thermal decomposition of calcium gluconate monohydrate

FJWJ Labuschagné et al.

JOURNAL OF MATERIALS SCIENCE (2003)