Serpentinite Applications: Effects of Surface-Ions-Modified Natural Silicate Minerals on Cultivation of Magnesium–Manganese-Enriched Garlics
Abstract
:1. Research Background and Objectives
1.1. Growth Characteristics of Garlic
1.2. Varieties and Flavors of Garlic
- China: China is the world’s largest producer of garlic. It grows several types of garlic, including red, white, and green garlic. Red garlic is one of the most prominent varieties of garlic and is known for its strong, spicy flavor and firm texture. White garlic is another common variety with a milder taste and softer texture. Green garlic comprises tender stalks that are harvested at an early stage; it is highly nutritious and offers a fresh taste.
- France: French garlic is best represented by Rose de Lautrec, a variety distinguished by its strong fragrance. Rose de Lautrec is mainly grown in certain regions in southern France, where the climate and soil are particularly well suited for garlic growth.
- Spain: The most famous variety in Spain is Provence Wight, a white garlic known for its intense spiciness and aroma.
1.3. Chemical Composition and Health Benefits of Garlic [4,5,6]
1.4. Preservation and Consumption of Garlic [7]
1.5. Importance of Magnesium and Manganese to the Human Body [8,9]
1.6. Characteristics of Natural Serpentinite Materials [10,11,12,13,14,15,16,17,18,19]
1.7. Cultivation and Characteristics of Magnesium–Manganese-Enriched Garlic
2. Experimental Procedures and Methods
2.1. Preparation of Serpentinite Powder and Immersion Plating and Sintering
2.2. Ion Release Test
2.3. Garlic Cultivation Test and Composition Analysis
3. Results and Discussion
3.1. Characteristics of Serpentinite Powder and Surface Manganese Modification
3.2. Cultivation and Growth Characteristics of Magnesium–Manganese Garlic
4. Conclusions and Future Prospects
Funding
Data Availability Statement
Conflicts of Interest
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mg/L | Mg-Si-O | Mg-Si-Mn-O-400 | Mg-Si-Mn-O-600 | Mg-Si-Mn-O-800 |
---|---|---|---|---|
Mg ion | 80.33 | 110.92 | 133.81 | 90.18 |
Mn ion | N/A | 38.76 | 16.59 | 1.90 |
Mg-Si-O | Mg-Si-Mn-O-400 | Mg-Si-Mn-O-600 | Mg-Si-Mn-O-800 | |
---|---|---|---|---|
m2/g | 42.82 | 61.50 | 60.92 | 56.47 |
Na | P | K | Ca | Mg | Fe | Zn | Mn | pH | |
---|---|---|---|---|---|---|---|---|---|
mg/g | 10.2 | 35.4 | 158.2 | 111.7 | 0.5 | 1.6 | 0.8 | 0.0 | 7.2 |
Mg Ion (mg/L) | Mn Ion (mg/L) | Allicin Content (mg/g) | Sulfur Compounds (mg/g) | Moisture Content (%) | |
---|---|---|---|---|---|
Magnesium–manganese water–wet garlic | 38.22 | 17.42 | 12.85 | 8.53 | 42.15 |
Distilled water–wet garlic | 1.81 | 0 | 10.14 | 7.34 | 40.57 |
Magnesium–manganese water–dried garlic | 42.92 | 11.72 | 11.40 | 8.04 | 26.00 |
Distilled water–dried garlic | 0.46 | 0 | 5.70 | 6.01 | 24.28 |
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Hung, F.S. Serpentinite Applications: Effects of Surface-Ions-Modified Natural Silicate Minerals on Cultivation of Magnesium–Manganese-Enriched Garlics. Minerals 2025, 15, 62. https://doi.org/10.3390/min15010062
Hung FS. Serpentinite Applications: Effects of Surface-Ions-Modified Natural Silicate Minerals on Cultivation of Magnesium–Manganese-Enriched Garlics. Minerals. 2025; 15(1):62. https://doi.org/10.3390/min15010062
Chicago/Turabian StyleHung, Fei Shuo. 2025. "Serpentinite Applications: Effects of Surface-Ions-Modified Natural Silicate Minerals on Cultivation of Magnesium–Manganese-Enriched Garlics" Minerals 15, no. 1: 62. https://doi.org/10.3390/min15010062
APA StyleHung, F. S. (2025). Serpentinite Applications: Effects of Surface-Ions-Modified Natural Silicate Minerals on Cultivation of Magnesium–Manganese-Enriched Garlics. Minerals, 15(1), 62. https://doi.org/10.3390/min15010062