Bioremediation of high-molecular-weight polycyclic aromatic hydrocarbons: an insight into state of art and cutting-edge approaches DOI
Pooja Chauhan,

Arfin Imam,

Pankaj K. Kanaujia

и другие.

Elsevier eBooks, Год журнала: 2024, Номер unknown, С. 179 - 212

Опубликована: Янв. 1, 2024

Язык: Английский

Recent trends in polycyclic aromatic hydrocarbons pollution distribution and counteracting bio-remediation strategies DOI
Selvaraj Barathi,

J. Gitanjali,

Gandhimathi Rathinasamy

и другие.

Chemosphere, Год журнала: 2023, Номер 337, С. 139396 - 139396

Опубликована: Июль 3, 2023

Язык: Английский

Процитировано

59

Bioremediation of contaminated soil and groundwater by in situ biostimulation DOI Creative Commons
Martin Romantschuk, Katariina Lahti-Leikas,

Merja H. Kontro

и другие.

Frontiers in Microbiology, Год журнала: 2023, Номер 14

Опубликована: Ноя. 6, 2023

Bioremediation by in situ biostimulation is an attractive alternative to excavation of contaminated soil. Many remediation methods have been tested with some success; however, due highly variable results realistic field conditions, they not implemented as widely might deserve. To ensure success, should be validated under site-analogous conditions before full scale use, which requires expertise and local knowledge the implementers. The focus here on indigenous microbial degraders evaluation their performance. Identifying removing biodegradation bottlenecks for degradation organic pollutants essential. Limiting factors commonly include: lack oxygen or electron acceptors, low temperature, essential nutrients. Additional factors: bioavailability contaminating compound, pH, distribution contaminant, soil structure moisture, cases, potential may amended bioaugmentation. Methods remove these are discussed. Implementers also prepared combine use them sequence. Chemical/physical means used enhance biostimulation. review suggests tools assessing sustainability, life cycle assessment, risk assessment. help entrepreneurs, decision makers, developers future, we suggest founding a database otherwise seldom reported unsuccessful interventions, well artificial intelligence (AI) assist site decision-making.

Язык: Английский

Процитировано

32

Synthesis and characterization of nanobiochar from rice husk biochar for the removal of safranin and malachite green from water DOI Creative Commons

Sadia Aziz,

Bushra Uzair, Muhammad Ali

и другие.

Environmental Research, Год журнала: 2023, Номер 238, С. 116909 - 116909

Опубликована: Сен. 4, 2023

Xenobiotic pollution in environment is a potential risk to marine life, and human health. Nanobiotechnology an advanced emerging solution for the removal of environmental pollutants. Adsorption-based technologies are being used alleviate global prevalence xenobiotics like dyes, due their high efficacy cost effectiveness. Current study explored nanobiochar syntehsized via ultrasonication centrifugation from rice husk dye water. It involves synthesis biochar Safranin, Malachite green, mixture both aqueous Biochar was synthesized through pyrolysis at 600 °C 2 h. To convert it into nanobiochar, sonication techniques were applied. The yield obtained 27.5% 0.9% nanobiochar. Nanobiochar analysis Fourier-Transform Spectrometer (FTIR), X-ray Power Diffraction (XRD) scanning electron microscopy (SEM) suggested its crystalline nature having minerals rich silicon, with cracked disintegrated carbon structure temperature processing treatments. Removal dyes by evaluated changing different physical parameters i.e., dose, pH, temperature. Pseudo-first order model pseudo-second applied studying adsorption kinetics mechanism. Kinetics followed suggesting process chemical sorption. High found higher concentration temperature, neutral pH. Maximum elimination percentages safranin, malachite as 91.7%, 87.5%, 85% respectively. We conclude that could be media.

Язык: Английский

Процитировано

29

A systematic review of polycyclic aromatic hydrocarbon pollution: A combined bibliometric and mechanistic analysis of research trend toward an environmentally friendly solution DOI

Olive Mekontchou Yemele,

Zhenhua Zhao, Jackson Nkoh Nkoh

и другие.

The Science of The Total Environment, Год журнала: 2024, Номер 926, С. 171577 - 171577

Опубликована: Март 21, 2024

Язык: Английский

Процитировано

7

Comparative Evaluation of Pyrene-Degrading Potential of Three Gram-Negative Bacterial Strains: Acinetobacter baumannii BJ5, Acinetobacter pitti NFL, and Enterobacter cloacae BT DOI

Bineypreet Kaur,

Shailendra Kumar Arya, Jaspreet Kaur

и другие.

Biocatalysis and Agricultural Biotechnology, Год журнала: 2025, Номер unknown, С. 103564 - 103564

Опубликована: Март 1, 2025

Язык: Английский

Процитировано

0

Microbial enhanced oil recovery: process perspectives, challenges, and advanced technologies for its efficient applications and feasibility DOI
Ankita Das, Nandita Das,

Prisha Pandey

и другие.

Archives of Microbiology, Год журнала: 2025, Номер 207(5)

Опубликована: Апрель 1, 2025

Язык: Английский

Процитировано

0

Bio-based solutions for petroleum waste: Composting and microcosm approaches in environmental restoration DOI
Pooja Talukdar, Niraj Kumar, Ratul Saikia

и другие.

Journal of Water Process Engineering, Год журнала: 2025, Номер 71, С. 107431 - 107431

Опубликована: Март 1, 2025

Язык: Английский

Процитировано

0

Chitin and chitosan from shellfish waste and their applications in agriculture and biotechnology industries DOI Creative Commons

Sampurna Rai,

Priyanshu Pokhrel, Pranaya Udash

и другие.

Critical Reviews in Biotechnology, Год журнала: 2025, Номер unknown, С. 1 - 19

Опубликована: Март 16, 2025

A shellfish processing plant generates only 30–40% of edible meat, while 70–60% portions are considered inedible or by-products. This large amount byproduct waste contains 20–40% chitin, that can be extracted using chemical greener alternative extraction technologies. Chitin and its derivative (chitosan) natural polysaccharides with nontoxicity, biocompatible, biodegradable properties. Due to their versatile physicochemical, mechanical, various bioactivities, these compounds find applications in industries, including: biomedical, dental, cosmetics, food, textiles, agriculture, biotechnology. In the agricultural sector, have been reported promote: growth, defense system, slow release nutrients fertilizer, nutrition, remediate soil conditions, etc. Whereas, biotechnology indicated: enhanced enzyme stability efficacy, water purification remediation, application fuel cells supercapacitors for energy conversion, acting as a catalyst synthesis, review provides comprehensive discussion on utilization biopolymers agriculture (fertilizer, seed coating, treatment, bioremediation) (enzyme immobilization, wastewater synthesis). Additionally, techniques including conventional non-thermal reported. Lastly, concluding remarks future direction provided.

Язык: Английский

Процитировано

0

Role of microbial enzymes in nano-bioremediation process and its mechanism DOI
Saurabh Singh, Akhilesh Kumar, Ram Krishna

и другие.

Elsevier eBooks, Год журнала: 2025, Номер unknown, С. 265 - 275

Опубликована: Янв. 1, 2025

Язык: Английский

Процитировано

0

Biodegradation of pyrene by bacterial consortia: Impact of natural surfactants and iron oxide nanoparticles DOI
Punniyakotti Elumalai,

Arunagiri Santhosh Kumar,

Perumal Dhandapani

и другие.

Environmental Research, Год журнала: 2023, Номер 242, С. 117753 - 117753

Опубликована: Ноя. 24, 2023

Язык: Английский

Процитировано

9