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Renu Chaudhary,

Vijay Kumar,

Akhilesh Kumar,

Sanjay Gupta,

Vivek Kumar,
- Research Scholar, Himalayan School of Biosciences, Swami Rama Himalayan University, Jolly Grant, Dehradun, Uttarakhand, India
- Associate Professor, Himalayan School of Biosciences, Swami Rama Himalayan University, Jolly Grant, Dehradun, Uttarakhand, India
- Assistant Professor, Himalayan School of Biosciences, Swami Rama Himalayan University, Jolly Grant, Dehradun, Uttarakhand, India
- Professor, Himalayan School of Biosciences, Swami Rama Himalayan University, Jolly Grant, Dehradun, Uttarakhand, India
- Professor, Himalayan School of Biosciences, Swami Rama Himalayan University, Jolly Grant, Dehradun, Uttarakhand, India
Abstract document.addEventListener(‘DOMContentLoaded’,function(){frmFrontForm.scrollToID(‘frm_container_abs_122925’);});Edit Abstract & Keyword
Composting has gained significant attention for sustainable waste management and nutrient recycling. This study investigated the efficacy of water hyacinth (Eichhornia crassipes) as a composting material to produce nutrient-rich organic fertilizer. Water hyacinth compost inoculated with nitrogen-fixing (Azotobacter chroococcum) and phosphate-solubilizing bacteria (Pseudomonas putida) exhibited increased nitrogen and phosphorus content compared to uninoculated compost or cattle dung compost. Wheat grown with biofertilizer-enriched water hyacinth compost displayed significantly improved grain yield, straw yield, plant height, and nutrient uptake compared to control treatments. Economic analysis revealed that biofertilizer-enhanced water hyacinth compost resulted in greater net returns compared to other treatments. This study highlights the potential of water hyacinth as a sustainable resource for organic fertilizer production, promoting agricultural productivity and economic benefits.
Keywords: polymer, water hyacinth, cattle dung, Chemical composites, Nanocellulose. Fiber-Reinforced Polymer Composite
Renu Chaudhary, Vijay Kumar, Akhilesh Kumar, Sanjay Gupta, Vivek Kumar. Water Hyacinth-Derived Biopolymers as Reinforcements for Sustainable Fiber-Reinforced Polymer Composites. Journal of Polymer and Composites. 2024; ():-.
Renu Chaudhary, Vijay Kumar, Akhilesh Kumar, Sanjay Gupta, Vivek Kumar. Water Hyacinth-Derived Biopolymers as Reinforcements for Sustainable Fiber-Reinforced Polymer Composites. Journal of Polymer and Composites. 2024; ():-. Available from: https://journals.stmjournals.com/jopc/article=2024/view=0
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Journal of Polymer and Composites
| Volume | |
| Received | 08/07/2024 |
| Accepted | 08/08/2024 |
| Published | 03/12/2024 |
