Bioactive Compounds from Citrus-Processing By-Products: A Narrative Review of Physical-Assisted and Conventional Extraction Technologies Plus Downstream Applications
Abstract
1. Introduction
2. Structure, Chemical Components and Medicinal Value of Citrus
3. Extraction of Compounds Present in Citrus Peels
3.1. Bioactive Compounds
| Citrus Species | Extraction Technology | Power (W) | Temperature (°C) | Time (min) | Solvent System (v/v) | Total Phenolic Content (mg GAE/100 g DW) | Measured Properties of Extracts | Ref. |
|---|---|---|---|---|---|---|---|---|
| Citrus reticulata | UAE | - | 37 ± 1 | 30 | Samples: acetone (1:3) | 2830.0 | DPPH 48.23%; UAE > maceration | [40] |
| Citrus reticulata | conventional maceration | - | 37 ± 1 | 30 | Samples: acetone (1:3) | 2300.0 | DPPH 42.96%; UAE > maceration | [40] |
| Citrus reticulata | UAE | 56.71 | 48 | 40 | Acetone: water (80:20) | 15,263.3 | Hesperidin content: 6435.5 mg/100 g DW; UAE > MAE (1.77×) | [50] |
| Citrus × aurantium | UAE | 80 | - | 34.7 | Acetone: water (80:20) | 3376.0 ± 563.0 | Total flavonoid content: 7550.0 mg/100 g DW; DPPH IC50 = 30.7 μg/mL; UAE > MAE | [48] |
| Citrus sinensis | UAE | 133 | 59.83 | 45 | water | 5002.0 | UAE > CE | [20] |
| Citrus sinensis | UAE | 60 | 26 | 28 | Water: methanol: DMSO (1:4:5) | 2407.0 ± 119.0 | UAE/EAE > CSE; phenolic fractions: FPs/EBPs/GBPs | [52] |
| Citrus × aurantiifolia | UAE | 285 | - | 4 | Ethanol: water (55:45) | 5440.0 | UAE > MAE | [49] |
| Citrus reticulata | SFE | - | 43 | 120 | Supercritical CO2 | 4122.0 | DPPH 79.94% | [51] |
3.2. Pectin
| Extraction Method | Citrus Species | Extraction Conditions | Yield (%) | DE (%) | GalA (%) | Ref. |
|---|---|---|---|---|---|---|
| Citric acid extraction | Citrus reticulata | 3% acidified methanol, 70 °C, 120 min | 23.1 | 58.38 | 65.47 | [16] |
| Citric acid extraction | Citrus maxima | 0.55% acidified solution, 150 min | 24.0 | - | - | [64] |
| MAE | Citrus sinensis | 900 W, 160 °C, 5 min | 35.76 | 72.17 | 73.48 | [63] |
| MAE | Citrus limetta | 600 W, 3 min | 32.75 | 63.20 | 67.93 | [17] |
| UAE | Citrus reticulata | 600 W, 90 °C, 30 min | 30.59 | 80.09 | 68.21 | [14] |
| UAE | Citrus limon | 70 W, 42.65 min | 32.17 | 81.89 | - | [15] |
3.3. Essential Oils
| Extraction Method | Citrus Species | Solid-Liquid Ratio (v/v) | Power (W) | Time (min) | Essential Oil Yield (%) | d-Limonene (%) | Ref. |
|---|---|---|---|---|---|---|---|
| SD | Citrus × aurantium | - | - | 180 | - | 98.86 | [74] |
| SLME | Citrus × limon | 1:1 | 1000 | 15 | 1.26 | 68.15 | [75] |
| UAE | Citrus limetta | 1:10 | 80 | 20 | - | 97.00 | [76] |
| MAE | Citrus sinensis | 1:1.5 | 300 | 20 | 1.8 | - | [77] |
| MAE | Citrus × limon | 1:9 | 1000 | 15 | 1.12 | 72.2 | [75] |
3.4. A Multidimensional Comparative Analysis of Candidate Green Extraction Technologies
4. Applications
4.1. Encapsulation
4.2. Food Applications
4.3. Films or Packaging
4.4. Pollutant Treatment via Transformed Citrus By-Product Adsorbents
| Material | Process | Treatment | Main Results | Reference |
|---|---|---|---|---|
| Lemon Peel—Fe3O4 Nanocomposite | Hydrothermal precipitation of Fe3O4 using | Methylene blue (MB) | 93% MB removal (50 mg/L, pH 8, 15 mg adsorbent) lemon peel extract. | [115] |
| Citrus limetta (peel and pulp) | Magnetic bioadsorbents prepared from peels and pulp at 500 °C. | As (III) and As (V) removal from water | As (III): 714.28 μg/g (PAC-500), 526.31 μg/g (PPAC-500); As (V): qmax = 2000 μg/g for both. | [116] |
| Grapefruit peel | One-step synthesis of GFP@Ag bio-composite using bio-derived nano-doped peel. | Toluidine blue (TO), Crystal violet (CV), Brilliant green (BG) | Degradation/biosorption capacities: 194.8 mg/g (TO), 390.6 mg/g (CV), 306 mg/g (BG); visible light, 0.005 g adsorbent, 100–200 ppm, 20–120 min. | [117] |
| Citrus limetta peel activated carbon | H2SO4 activation to highly porous activated carbon | Methylene Blue and Crystal Violet Dyes | 82.77% MB and 89.87% CV removal (pH 7, 0.1 g, 120 min). | [118] |
| Citrus fruits wastes (orange, mandarin, rangpur lime, sweet lime) | Pyrolysis followed by H2O or CO2 activation | Cu(II) removal | BET surface area: 212.4 m2/g (CO2) and 399.4 m2/g (H2O); Cu(II) adsorption capacity: 28.2 and 27.8 mg/g, respectively. | [113] |
| Orange peel (Citrus sinensis) | Drying (45 °C, 72 h) and grinding | Cr(III) removal | Maximum adsorption capacity: 15.3 mg/g; 95% removal achieved. | [112] |
| Citrus limetta peel FeCl3-activated | FeCl3 activation and carbonization at 250 °C and 500 °C. | Fluoride removal | Langmuir capacity: 4.926 mg/g (AC-CLP250) and 9.709 mg/g (AC-CLP500); optimal: pH 6.6, 1.0 g/L, 240 min. | [12] |
| Citrus × limon peel- based La–Ce bimetallic | Conversion to magnetic nano/bio-adsorbent loaded with Ce–La nanoparticles | Phosphate removal | >98.12% phosphate removal (20 mg/L, pH 6.68, 30 °C) | [119] |
5. Discussion and Future Perspectives
5.1. Discussion
5.1.1. Raw Material Heterogeneity and Standardisation Gaps
5.1.2. Green Extraction: Laboratory Advantages Versus Scale-Up Barriers
5.1.3. Application Prospects and Commercialisation Hurdles
5.1.4. Towards an Integrated Analytical Framework
5.2. Future Perspectives
5.3. Limitations of the Present Review
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Yang, D.; Yu, M.; Li, Y.; Fang, L.; Kuang, T.; Yu, J.; Tan, X.; Zhang, J.; Tang, C. Bioactive Compounds from Citrus-Processing By-Products: A Narrative Review of Physical-Assisted and Conventional Extraction Technologies Plus Downstream Applications. Molecules 2026, 31, 3018. https://doi.org/10.3390/molecules31173018
Yang D, Yu M, Li Y, Fang L, Kuang T, Yu J, Tan X, Zhang J, Tang C. Bioactive Compounds from Citrus-Processing By-Products: A Narrative Review of Physical-Assisted and Conventional Extraction Technologies Plus Downstream Applications. Molecules. 2026; 31(17):3018. https://doi.org/10.3390/molecules31173018
Chicago/Turabian StyleYang, Di, Muze Yu, Yuanyuan Li, Lanlan Fang, Tingting Kuang, Jia Yu, Xiaoyan Tan, Jing Zhang, and Ce Tang. 2026. "Bioactive Compounds from Citrus-Processing By-Products: A Narrative Review of Physical-Assisted and Conventional Extraction Technologies Plus Downstream Applications" Molecules 31, no. 17: 3018. https://doi.org/10.3390/molecules31173018
APA StyleYang, D., Yu, M., Li, Y., Fang, L., Kuang, T., Yu, J., Tan, X., Zhang, J., & Tang, C. (2026). Bioactive Compounds from Citrus-Processing By-Products: A Narrative Review of Physical-Assisted and Conventional Extraction Technologies Plus Downstream Applications. Molecules, 31(17), 3018. https://doi.org/10.3390/molecules31173018
