Effects of Microalgae (Chlorella ZJ and Anabaena azotica) Application on Soil Carbon and Nitrogen Fractions in a Degraded Purple Soil: A Laboratory Incubation Study
Abstract
1. Introduction
2. Materials and Methods
2.1. Microalgae Suspension Culture
2.2. Soil Collection
2.3. Soil Incubation Experiments
2.4. Analytical Methods
2.4.1. Soil Property and C/N Fraction Analysis
2.4.2. Three-Dimensional Fluorescence Spectrometer Analysis
2.4.3. Soil C/N Mineralization Rate Analysis
2.4.4. Data Processing
3. Results
3.1. Variations in Soil Properties
3.2. Variations in DOC, DON, C/N Fraction, TOC, TN, and C/N Mineralization Capacity
3.3. Organic Matter Component Characteristics
3.4. Relationship Between C/N and Soil Properties
4. Discussion
4.1. Effects of Microalgae Application on Soil Properties
4.2. Effects of Microalgae on Soil C and N Accumulation
4.3. Influences of Microalgae on the Potential of Soil C and N Transformation
4.4. Environmental Implications
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| Abbreviation | Full term |
| AM | active microalga |
| IM | inactive microalga |
| SMC | soil moisture content |
| DOC | dissolved organic carbon |
| DON | dissolved organic nitrogen |
| DOM | dissolved organic matter |
| TOC | total organic carbon |
| TN | total nitrogen |
| POC | particulate organic carbon |
| CPOC | coarse particulate organic carbon |
| FPOC | fine particulate organic carbon |
| MAOC | mineral-associated organic carbon |
| SON | soil organic nitrogen |
| PTN | particulate total nitrogen |
| CPTN | coarse particulate total nitrogen |
| FPTN | fine particulate total nitrogen |
| MATN | mineral-associated total nitrogen |
| EPS | extracellular polymeric substances |
| BD | bulk density |
| EC | electrical conductivity |
| SAR | sodium adsorption ratio |
| ESP | exchangeable sodium percentage |
| CMR | C mineralization rate |
| NMR | net N mineralization rate |
| CK | control |
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| TAP-2 Culture Medium | BG-11 Culture Medium | ||||
|---|---|---|---|---|---|
| No. | Component | Concentration | No. | Component | Concentration |
| 1 | Tris-HCl | 2.42 g L−1 | 1 | K2HPO4 | 0.04 g L−1 |
| 2 | CH3COONa | 2 g L−1 | 2 | MgSO4·7H2O | 0.075 g L−1 |
| 3 | NH4Cl | 0.375 g L−1 | 3 | CaCl2·2H2O | 0.036 g L−1 |
| 4 | K2HPO4 | 0.04 g L−1 | 4 | Ferric citrate | 0.006 g L−1 |
| 5 | MgSO4·7H2O | 0.075 g L−1 | 5 | A5 trace element solution * | 1 mL L−1 |
| 6 | CaCl2·2H2O | 0.036 g L−1 | |||
| 7 | Na2CO3 | 0.02 g L−1 | |||
| 8 | Ferric citrate | 0.006 g L−1 | |||
| 9 | A5 trace element solution * | 1 mL L−1 | |||
| pH | BD g cm−3 | EC µS cm−1 | TOC g kg−1 | TN g kg−1 | DOC mg kg−1 | DON mg kg−1 | SAR (mmol−1)0.5 | ESP % | Particle Size Distribution (%) | ||
|---|---|---|---|---|---|---|---|---|---|---|---|
| Sand (2–0.02 mm) | Silt (0.02–0.002 mm) | Clay (<0.002 mm) | |||||||||
| 8.72 | 1.30 | 103.4 | 1.51 | 0.32 | 18.8 | 17.6 | 1.74 | 4.24 | 75.69 | 20.35 | 3.96 |
| Region | Type of Organic Matter Represented | Excitation Wavelength | Emission Wavelength |
|---|---|---|---|
| I | tyrosine-like substances | 200–250 | 200–330 |
| II | tryptophan-like substances | 200–250 | 330–380 |
| III | fulvic acid-like substances | 200–250 | 380–500 |
| IV | microbial byproducts | 250–400 | 200–380 |
| V | humic acid-like substances | 250–400 | 380–500 |
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Zou, X.; Cheng, J.; Cheng, J.; Jiang, X.; Huang, B.; Zhou, T.; Chen, L. Effects of Microalgae (Chlorella ZJ and Anabaena azotica) Application on Soil Carbon and Nitrogen Fractions in a Degraded Purple Soil: A Laboratory Incubation Study. Sustainability 2026, 18, 4057. https://doi.org/10.3390/su18084057
Zou X, Cheng J, Cheng J, Jiang X, Huang B, Zhou T, Chen L. Effects of Microalgae (Chlorella ZJ and Anabaena azotica) Application on Soil Carbon and Nitrogen Fractions in a Degraded Purple Soil: A Laboratory Incubation Study. Sustainability. 2026; 18(8):4057. https://doi.org/10.3390/su18084057
Chicago/Turabian StyleZou, Xiangbo, Jiong Cheng, Jun Cheng, Xinyu Jiang, Bin Huang, Tiancheng Zhou, and Ling Chen. 2026. "Effects of Microalgae (Chlorella ZJ and Anabaena azotica) Application on Soil Carbon and Nitrogen Fractions in a Degraded Purple Soil: A Laboratory Incubation Study" Sustainability 18, no. 8: 4057. https://doi.org/10.3390/su18084057
APA StyleZou, X., Cheng, J., Cheng, J., Jiang, X., Huang, B., Zhou, T., & Chen, L. (2026). Effects of Microalgae (Chlorella ZJ and Anabaena azotica) Application on Soil Carbon and Nitrogen Fractions in a Degraded Purple Soil: A Laboratory Incubation Study. Sustainability, 18(8), 4057. https://doi.org/10.3390/su18084057

