A Two-Step Strategy for Aroma Restoration of Strawberry Concentrate Based on ZIF-67@PDMS Composite Membrane
Abstract
1. Introduction
2. Materials and Methods
2.1. Reagents
2.2. Experimental Methods
2.2.1. Preparation of ZIF-67 Nanoparticles
2.2.2. Preparation of ZIF-67@PDMS
2.2.3. Characterization of ZIF-67@PDMS
2.2.4. Pervaporation Experiment
2.2.5. Flavor Restoration of Strawberry Concentrate
2.2.6. Analytical Method
2.2.7. Data Processing
3. Results and Discussion
3.1. Effect of Particle Packing Amount on Separation Performance
3.2. Characterization of the ZIF-67@PDMS Composite Membrane
3.3. Separation Performance of ZIF-67@PDMS Composite Membrane for Linalool, Benzaldehyde, and Ethyl Acetate
3.3.1. The Effect of Aromatic Compound Concentration
3.3.2. The Effect of Temperature
3.3.3. The Effect of Membrane Surface Flow Rate
3.4. Isolation of Aromatic Compounds from Strawberry Juice and Flavor Restoration of Concentrated Juice
3.5. Electronic Nose Analysis
3.6. Research Limitations and Future Prospects
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| No. | RT | Compounds | RIexp | RI Lit | Peak Area, mV∙s | Recovery Rate (%) | ||
|---|---|---|---|---|---|---|---|---|
| #1 | #2 | #3 | ||||||
| 1 | 32.41 | Nerolidol | 1522 | 1528 | 13,010 | 2481 | 4484 | 80.93 |
| 2 | 10.90 | phenethyl alcohol | 1109 | 1116 | 3210 | 2212 | 2030 | 31.09 |
| 3 | 10.82 | Linalool | 1088 | 1098 | 4710 | 2425 | 3827 | 48.51 |
| 4 | 41.50 | 3-(5-Mercapto-1,3,4-oxadiazol-2-yl)phenol | 1682 | - | 7530 | 3039 | 4734 | 59.64 |
| 5 | 39.53 | Di(1-phenylpropyl) isophthalate | 1652 | - | 1127 | - | 549 | - |
| 6 | 45.39 | Acetic acid 3-(4-chloro-phenyl)-1,4-dioxo-1,4-dihydro-naphthalen-2-yl ester | 1721 | - | 1124 | - | 525 | - |
| 7 | 38.94 | 4-hexen-1-ol acetate | 1635 | - | 1668 | - | - | - |
| 8 | 5.99 | Ethyl acetate | 633 | 645 | 5822 | 1503 | 1665 | 74.18 |
| 9 | 46.31 | Dicyclohexyl methyl phosphonate | 1741 | - | 6245 | 1754 | 2910 | 71.91 |
| 10 | 58.80 | 2-Thiopheneacetic acid but-3-yn-2-yl ester | 1834 | - | 5270 | 3011 | 4189 | 42.86 |
| 11 | 40.64 | Ethyl 4-isobutyryl-3,5-dimethyl-1H-pyrrole-2-carboxylate | 1669 | - | 3051 | - | 1058 | - |
| 12 | 41.87 | 1-[[(2-methylphenyl)imino]benzyloxy]-2-naphthoic acid methyl ester | 1688 | - | 11,458 | 3029 | 6019 | 73.56 |
| 13 | 44.75 | [2,2′-Bifuran]-3-carboxaldehyde methyl ester | 1713 | - | 7877 | 2028 | 3735 | 74.25 |
| 14 | 30.98 | 1-Benzyl-1H-indole-3-carbaldehyde | 1383 | - | 2762 | 2364 | 3454 | 14.41 |
| 15 | 30.67 | 1H-1,2,3-triazole-4-carbaldehyde | 1367 | - | 4847 | 2696 | 5450 | 44.38 |
| 16 | 45.81 | 2′-Methyl acetophenone | 1728 | - | 892 | - | - | - |
| 17 | 38.65 | 4-Methylphenyl pentanone | 1626 | - | 965 | - | - | - |
| 18 | 9.80 | benzaldehyde | 946 | 961 | 3608 | 1945 | 2235 | 46.09 |
| 19 | 30.22 | 2-Hydroxy-4,5-methylenedioxyacetophenone | 1360 | - | 7742 | - | 2192 | - |
| 20 | 41.43 | 3-(3,3-Dimethylbutyl)cyclohexanone | 1678 | - | 2537 | - | 2648 | - |
| 21 | 40.77 | 2-Phenyl-1H-1,2,4-triazol-5-one | 1673 | - | 2483 | - | 1548 | - |
| 22 | 20.07 | 1-(5′-methylfurfuryl)pyrrolidine | 1225 | - | 1800 | - | 1217 | - |
| 23 | 23.64 | hexafluoroethane | 1267 | - | 3993 | 2466 | 3584 | 38.24 |
| 24 | 43.75 | 1-Cyclohexyl dimethyl siloxy-3-phenyl propane | 1701 | - | 5667 | 3487 | 4598 | 38.47 |
| 25 | 45.89 | 1-(2,2,2-Trifluoroethyl)-1H-pyrazol-3-amine | 1732 | - | 1699 | - | 3222 | - |
| 26 | 44.68 | 4′-Pentyl-[1,1′-biphenyl]-4-carbonitrile | 1710 | - | 3386 | 2470 | 2905 | 27.05 |
| 27 | 52.32 | 5-phenylthiazole | 1783 | - | 5864 | 536 | - | 90.86 |
| 28 | 27.25 | 2-methylnaphthalene | 1311 | 1296 | - | - | 6981 | - |
| 29 | 23.62 | 4-(1-Methylcyclobutyl)phenol | 1263 | - | - | 3242 | - | - |
| 30 | 30.69 | 5-hexyl-2,4-dihydroxybenzaldehyde | 1370 | - | - | 1438 | - | - |
| 31 | 49.01 | 4-Nitro-1H-isoindole-1,3(2H)-dione | 1759 | - | - | 387 | - | - |
| 32 | 49.51 | 2-Acetyl-3-nitrobenzoic acid | 1768 | - | - | 3012 | - | - |
| 33 | 40.47 | N-(2-phenylethyl)phenylethylamine | 1661 | - | 9029 | 2393 | 2950 | 73.50 |
| Serial Number | Sensor Name | Sensitive Substances |
|---|---|---|
| 1 | W1C | Aromatic compounds |
| 2 | W5S | Nitrogen oxides |
| 3 | W3C | Ammonia, aromatic molecules |
| 4 | W6S | Hydrides |
| 5 | W5C | Olefins, aromatic, polar molecules |
| 6 | W1S | Alkanes |
| 7 | W1W | Sulfur compounds |
| 8 | W2S | Alcohols, some aromatic compounds |
| 9 | W2W | Aromatic compounds, sulfur-containing organic compounds |
| 10 | W3S | Alkanes and fatty acids |
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Teng, Z.; Ge, Z.; Yu, X.; Zhou, C.; Guo, S.; Sun, Y.; Yao, Z. A Two-Step Strategy for Aroma Restoration of Strawberry Concentrate Based on ZIF-67@PDMS Composite Membrane. Foods 2026, 15, 374. https://doi.org/10.3390/foods15020374
Teng Z, Ge Z, Yu X, Zhou C, Guo S, Sun Y, Yao Z. A Two-Step Strategy for Aroma Restoration of Strawberry Concentrate Based on ZIF-67@PDMS Composite Membrane. Foods. 2026; 15(2):374. https://doi.org/10.3390/foods15020374
Chicago/Turabian StyleTeng, Ziling, Zixuan Ge, Xia Yu, Chunxia Zhou, Suling Guo, Yun Sun, and Zhong Yao. 2026. "A Two-Step Strategy for Aroma Restoration of Strawberry Concentrate Based on ZIF-67@PDMS Composite Membrane" Foods 15, no. 2: 374. https://doi.org/10.3390/foods15020374
APA StyleTeng, Z., Ge, Z., Yu, X., Zhou, C., Guo, S., Sun, Y., & Yao, Z. (2026). A Two-Step Strategy for Aroma Restoration of Strawberry Concentrate Based on ZIF-67@PDMS Composite Membrane. Foods, 15(2), 374. https://doi.org/10.3390/foods15020374
