Showing posts with label separation. Show all posts
Showing posts with label separation. Show all posts

Thursday, 10 July 2025

Advanced CuO/CeO2/ZnO Ternary Nano-Photocatalysts: Efficient Utilisation of Photo-Excited Carriers under Sunlight | Chapter 9 | Chemical and Materials Sciences: Developments and Innovations Vol. 5

 Free photo-excited holes and electrons are known to promote photocatalytic processes through their intrinsically strong oxidative/reduced characteristics. However, the majority of surface carriers are highly dependent on the carrier motion along the direction of the built-in electric field created by surface states, i.e., the dangling bonds. This leads to inefficient surface photocatalytic reactions solely driven by photo-excited electrons or holes. In this chapter, we introduce a multi-component nano-particle (NP) photocatalyst platform integrating the different photo-response behaviours of n and p-type materials, exhibiting an enhanced photo-activity under a broad wavelength range, the designed band alignment is also crucial for achieving highly efficient photo-excited charge separation. The ternary CuO/CeO2/ZnO composite nano-photocatalysts were synthesised by a straightforward two-step sol-gel method. The photo responses to both UV and visible light, as well as the visible light utilisation rates of ZnO, were synergistically intensified by co-coupling with CeO2 and CuO. The roles of CuO and CeO2 in photocatalytic reactions under UV and visible light were systematically explored. Specifically, under UV light, the photogenic holes (h+) of ZnO, and CeO2, along with the produced hydroxyl radicals (·OH), were identified as the primary active species. Conversely, under visible light, superoxide radicals (·O2-) generated by the reactions between oxygen molecules and the photo-generated electrons (e-) of CuO moving towards the catalyst surface were also found to be crucial for promoting dye decomposition. Consequently, these composites demonstrate a significantly enhanced photocatalytic degradation performance for various organic pollutants under UV and visible light excitation. The improved photo-responses, the well-matched band structures facilitating charge transfer, and the highly efficient utilisation of the photo-excited carriers in the ternary nano-heterostructure are suggested to be the key factors for the remarkable enhancement of photocatalytic performance. This chapter provides a promising design avenue for unlocking the full potential of ZnO-based photocatalysts, advancing efficient photocatalytic processes.

 

Author(s) Details

Kaiyi Luo
College of Electrical & Information Engineering & Key Lab of Information Materials of Sichuan Province, Southwest University for Nationalities, Chengdu 610041, China.

 

Han Li
College of Electrical & Information Engineering & Key Lab of Information Materials of Sichuan Province, Southwest University for Nationalities, Chengdu 610041, China

 

 

Qiuping Zhang
College of Electrical & Information Engineering & Key Lab of Information Materials of Sichuan Province, Southwest University for Nationalities, Chengdu 610041, China.

 

Huan Yuan
College of Electrical & Information Engineering & Key Lab of Information Materials of Sichuan Province, Southwest University for Nationalities, Chengdu 610041, China.

 

Fei Yu
College of Electrical & Information Engineering & Key Lab of Information Materials of Sichuan Province, Southwest University for Nationalities, Chengdu 610041, China.

 

Ming Xu

College of Electrical & Information Engineering & Key Lab of Information Materials of Sichuan Province, Southwest University for Nationalities, Chengdu 610041, China.

 

Please see the book here:- https://doi.org/10.9734/bpi/cmsdi/v5/1871  

Wednesday, 18 June 2025

Application of Chromatography Methods for the Separation and Detection of Certain Benzodiazepine Drugs in Forensic Sample |Chapter 6 | Pharmaceutical Research: Recent Advances and Trends Vol. 7

Benzodiazepines (BZDs) are widely used in pharmacotherapy as antiepileptic, muscle relaxant, hypnotic, and anesthetic inductors. These drugs were once an occasional problem, today they have become much more common. Due to the structural similarity of the specimens encountered by the forensic laboratory, an array of instruments is needed to correctly identify these substances. Any of the BZDs can be identified by combining the results obtained with different mobile phases. For pharmaceutical sample preparation, each type of BZD tablet was accurately weighed and powdered in a mortar. Ten milligrams were taken and dissolved in 10 mL of methanol and sonicated for five minutes. Forensic Scientists are required to identify an ever-increasing and more complex assortment of drugs and related compounds. Rapid, sensitive, and specific thin-layer chromatography (TLC), high-performance liquid chromatography (HPLC), and gas chromatography-mass spectrometry (GC-MS) methods were utilized for the analysis of certain benzodiazepines (BZDs). HPLC proposes a cost-efficient method with the ruggedness and consistency necessary for forensic testing and consequently is widely used in forensic laboratories today. GC-MS is one of the most commonly used techniques for the identification and quantitation of forensic drug samples. As a “hyphenated” technique, it combines the separation power of a GC with the analyte specificity of a spectroscopic technique, provided that vastly specific spectral data on individual compounds in a complex mixture often devoid of prior separation. We succeeded in the separation of the encountered BZD drug diazepam in the forensic sample. The method was validated for linearity, accuracy, precision, and limit of detection. This method could be potentially applied in the analysis of forensic samples from drug-facilitated sexual assault cases. A competent forensic toxicologist relies on their own case experience as well as the unique state of affairs of each case under assessment.

 

Author (s) Details

Karuppasamy Gurusamy
Regional Forensic Science Laboratory, Government of Tamil Nadu, Madurai – 20, India and Department of Chemistry, Raja Doraisingam Government Arts College, Government of Tamil Nadu, Sivagangai, India.

A. Cyril
Department of Chemistry, Raja Doraisingam Government Arts College, Government of Tamil Nadu, Sivagangai, India.

Subbiah Thangadurai
Department of Chemistry, Government Arts and Science College, Government of Tamil Nadu, Sivakasi – 24, India..

 

Please see the book here:- https://doi.org/10.9734/bpi/prrat/v7/1627