Study on the Structure and Antioxidant Properties of Seamless Knitted Fabrics with Antioxidant Fibers
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.1.1. Selection of Yarn Program
2.1.2. Fabric Structure Design
- (1)
- Weft flat knit
- (2)
- 1+1 false rib
- (3)
- 1+3 false rib
2.1.3. Establishment of Specimens
2.2. Experiments and Tests
2.2.1. DPPH Radical Scavenging Rate Test Experiment
2.2.2. ABTS Radical Scavenging Rate Test Experiment
3. Results and Discussions
3.1. DPPH Radical Scavenging Rate Test Results
3.2. ABTS Radical Scavenging Rate Test Results
4. Conclusions
- (1)
- The DPPH and ABTS free radical scavenging rate results of 15 samples were analyzed. Both showed that, for yarn types, the free radical scavenging rates arranged from smallest to largest followed the order nylon filament < collagen nylon filament < mint nylon filament < coffee carbon nylon filament < tea carbon nylon filament, while for fabric structure, the free radical scavenging rates arranged from smallest to largest followed the order 1+3 false rib < weft flat knit < 1+1 false rib.
- (2)
- In the antioxidant performance tests of both DPPH radical scavenging experiments and ABTS radical scavenging, specimen #5 using tea carbon nylon filament as raw yarn material with a fabric structure of 1+1 false rib had the best antioxidant performance of all types. However, the antioxidant performance of specimen #15 with the 1+3 false rib structure using nylon filament as a coating was poor.
- (3)
- This study confirms that knitted fabrics made from tea carbon nylon yarn with a 1+1 false rib structure possess excellent antioxidant properties. These fabrics show great potential for subsequent applications. First, they could be used to develop high-end intimate apparel that combines comfort and antibacterial functions. Second, they are suitable for manufacturing healthy home textiles and baby–mother textiles. Third, they also have application prospects in industrial textiles such as medical protection. This work provides a new direction and material basis for the development of high-value functional textiles and the high-value utilization of tea resources.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Raw Yarn Materials | Fineness | Yarn Name | Supplier |
|---|---|---|---|
| Yarn | 7.78 tex (70 D/48 F) | Mint Nylon Filament | Shandong Rare Technology Co. (Jinan, China) |
| Tea Carbon Nylon Filament | Chinachem New Material Technology Co. (Xiamen, China) | ||
| Coffee Carbon Nylon Filament | Chinachem New Material Technology Co. (Xiamen, China) | ||
| Collagen Nylon Filament | Taicang Fangke Textile Co. (Suzhou, China) | ||
| Nylon Filament | Yiwu Huading Nylon Co. (Jinhua, China) |
| No. | Factor | |
|---|---|---|
| A (Raw Yarn Materials) | B (Fabric Microstructures) | |
| 1 | Mint Nylon Yarn | weft flat knit |
| 2 | Tea Carbon Nylon Yarn | 1+1 false rib |
| 3 | Coffee Carbon Nylon Yarn | 1+3 false rib |
| 4 | Collagen Nylon Yarn | --- |
| 5 | Nylon yarn | --- |
| Specimen No. | A (Raw Yarn Materials) | B (Fabric Microstructures) |
|---|---|---|
| #1 | Mint Nylon Yarn | weft flat knit |
| #2 | Mint Nylon Yarn | 1+1 false rib |
| #3 | Mint Nylon Yarn | 1+3 false rib |
| #4 | Tea Carbon Nylon Yarn | weft flat knit |
| #5 | Tea Carbon Nylon Yarn | 1+1 false rib |
| #6 | Tea Carbon Nylon Yarn | 1+3 false rib |
| #7 | Coffee Carbon Nylon Yarn | weft flat knit |
| #8 | Coffee Carbon Nylon Yarn | 1+1 false rib |
| #9 | Coffee Carbon Nylon Yarn | 1+3 false rib |
| #10 | Collagen Nylon Yarn | weft flat knit |
| #11 | Collagen Nylon Yarn | 1+1 false rib |
| #12 | Collagen Nylon Yarn | 1+3 false rib |
| #13 | Nylon Yarn | weft flat knit |
| #14 | Nylon yarn | 1+1 false rib |
| #15 | Nylon Yarn | 1+3 false rib |
| Specimen No. | DPPH Radical Scavenging Rate/% | Specimen No. | DPPH Radical Scavenging Rate/% |
|---|---|---|---|
| #1 | 64.6 | #9 | 68.1 |
| #2 | 68.9 | #10 | 45.2 |
| #3 | 63.1 | #11 | 43.0 |
| #4 | 75.0 | #12 | 47.7 |
| #5 | 79.9 | #13 | 30.7 |
| #6 | 68.0 | #14 | 32.8 |
| #7 | 74.0 | #15 | 29.8 |
| #8 | 73.2 |
| Dependent Variable: DPPH Radical Scavenging Rate | |||||
|---|---|---|---|---|---|
| Source | Class III Sum of Squares | Degrees of Freedom | Mean Square | F | Significance |
| Modified model | 4233.383 a | 6 | 705.564 | 69.895 | <0.001 |
| Intercept | 49,766.400 | 1 | 49,766.400 | 4929.970 | <0.001 |
| A (raw yarn material) | 4188.187 | 4 | 1047.047 | 103.723 | <0.001 |
| B (fabric microstructure) | 45.196 | 2 | 22.598 | 2.239 | 0.169 |
| Error | 80.757 | 8 | 10.095 | ||
| Total | 54,080.540 | 15 | |||
| Revised total | 4314.140 | 14 | |||
| Specimen No. | ABTS Radical Scavenging Rate/% | Specimen No. | ABTS Radical Scavenging Rate/% |
|---|---|---|---|
| #1 | 71.4 | #9 | 70.0 |
| #2 | 72.3 | #10 | 48.3 |
| #3 | 65.7 | #11 | 58.2 |
| #4 | 80.4 | #12 | 56.9 |
| #5 | 85.1 | #13 | 39.7 |
| #6 | 72.5 | #14 | 40.6 |
| #7 | 76.8 | #15 | 35.7 |
| #8 | 75.4 |
| Dependent Variable: ABTS Radical Scavenging Rate | |||||
|---|---|---|---|---|---|
| Source | Class III Sum of Squares | Degrees of Freedom | Mean Square | F | Significance |
| Modified model | 3395.072 a | 6 | 565.845 | 41.491 | <0.001 |
| Intercept | 60,040.067 | 1 | 60,040.067 | 4402.518 | <0.001 |
| A (raw yarn material) | 3300.187 | 4 | 825.047 | 60.498 | <0.001 |
| B (fabric microstructure) | 94.885 | 2 | 47.443 | 3.479 | 0.082 |
| Error | 109.101 | 8 | 13.638 | ||
| Total | 63,544.240 | 15 | |||
| Revised total | 3504.173 | 14 | |||
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Yan, L.; Chang, L.; Shen, S.; Jin, Z.; Zhao, M. Study on the Structure and Antioxidant Properties of Seamless Knitted Fabrics with Antioxidant Fibers. Materials 2025, 18, 5446. https://doi.org/10.3390/ma18235446
Yan L, Chang L, Shen S, Jin Z, Zhao M. Study on the Structure and Antioxidant Properties of Seamless Knitted Fabrics with Antioxidant Fibers. Materials. 2025; 18(23):5446. https://doi.org/10.3390/ma18235446
Chicago/Turabian StyleYan, Lei, Lu Chang, Shuhan Shen, Zimin Jin, and Mingtao Zhao. 2025. "Study on the Structure and Antioxidant Properties of Seamless Knitted Fabrics with Antioxidant Fibers" Materials 18, no. 23: 5446. https://doi.org/10.3390/ma18235446
APA StyleYan, L., Chang, L., Shen, S., Jin, Z., & Zhao, M. (2025). Study on the Structure and Antioxidant Properties of Seamless Knitted Fabrics with Antioxidant Fibers. Materials, 18(23), 5446. https://doi.org/10.3390/ma18235446

