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22 pages, 2327 KB  
Review
A Review of the Current Status of Active Cooling Technology of Liquid Metal for Hypersonic Aircraft
by Haowei Li, Zhongwei Deng, Xuran Hou and Guangze Song
Aerospace 2026, 13(8), 726; https://doi.org/10.3390/aerospace13080726 - 14 Aug 2026
Viewed by 238
Abstract
Under high-Mach-number flight conditions, the combustion chambers of hypersonic vehicles encounter extreme thermal environments marked by unilateral heating, high-heat-flux density, and supercritical pressure. Traditional hydrocarbon fuel cooling often suffers from insufficient heat sinks, high-temperature cracking and coking blockages, making it difficult to meet [...] Read more.
Under high-Mach-number flight conditions, the combustion chambers of hypersonic vehicles encounter extreme thermal environments marked by unilateral heating, high-heat-flux density, and supercritical pressure. Traditional hydrocarbon fuel cooling often suffers from insufficient heat sinks, high-temperature cracking and coking blockages, making it difficult to meet long-endurance thermal protection requirements. Liquid metal, due to its extremely high thermal conductivity, wide liquid phase temperature range, low Prandtl number and electromagnetic pump driving capability, has become a key technology for breaking through the bottleneck of high-heat-flux thermal protection. Apart from the magnitude of heat flux, the heat-transfer time scale (such as the characteristic thermal response time of the wall and the fluid) is also crucial. During hypersonic flight, transient thermal loads can change within milliseconds, requiring rapid thermal response. Liquid metals, due to their high thermal diffusivity, have a shorter thermal diffusion time compared to hydrocarbon fuels. This review employs a systematic literature review of approaches using gallium-indium-tin alloy, GaInSn, focusing on three core directions: the flow and heat-transfer characteristics of liquid metals, the optimization of cooling micro-channels, and the application of thermal protection systems. It summarizes the research progress at home and abroad, compares and analyzes the performance differences and applicable scenarios of typical liquid-metal working fluids, and summarizes the advantages and disadvantages of existing models, structural designs, and system schemes. The research shows that liquid metals can significantly alleviate thermal stratification and eliminate coking, and deep, narrow, tree-shaped, and biomimetic micro-channels can effectively enhance heat transfer. The liquid-metal-fuel dual-channel waste heat recovery and thermoelectric power generation system has demonstrated engineering application potential. Currently, the field still faces key challenges, such as unclear heat-transfer mechanisms under extreme conditions, the lack of general heat-transfer correlation formulas, insufficient compatibility with high-temperature materials, poor miniaturization and vibration resistance of electromagnetic pumps, and low system integration. In the future, efforts should be focused on developing multi-field coupled heat-transfer models under extreme thermal environments using engineered micro-channel structures, corrosion-resistant materials, and lightweight electromagnetic pumps, promoting the research and development of integrated thermal protection, heating and power generation systems, and providing support for the development of advanced thermal management systems for hypersonic aircraft and aviation engines. Full article
(This article belongs to the Section Aeronautics)
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14 pages, 5543 KB  
Article
Mixed-Solvent-Regulated MOF-Derived Porous In2O3 Nanostructures for Enhanced Triethylamine Gas Sensing
by Shuhao Shen, Jing Li, Rui Fang, Yongli Zhu and Wenbo Qin
Materials 2026, 19(16), 3442; https://doi.org/10.3390/ma19163442 - 13 Aug 2026
Viewed by 205
Abstract
The detection of triethylamine (TEA) at low concentrations requires sensing materials with high surface reactivity and efficient gas-transport capability. In this work, porous In2O3 nanostructures were successfully prepared through a mixed-solvent-regulated metal–organic framework-derived (MOF) strategy. Indium nitrate and terephthalic acid [...] Read more.
The detection of triethylamine (TEA) at low concentrations requires sensing materials with high surface reactivity and efficient gas-transport capability. In this work, porous In2O3 nanostructures were successfully prepared through a mixed-solvent-regulated metal–organic framework-derived (MOF) strategy. Indium nitrate and terephthalic acid were used as the metal source and organic ligand, respectively. By adjusting the volume ratio of N,N-dimethylformamide and ethanol, the nucleation and growth of In-based MOF precursors were effectively regulated, followed by thermal conversion into porous MOF-derived In2O3 materials. Structural characterization confirms that all samples were completely transformed into cubic In2O3 after calcination and exhibited porous architectures assembled from In2O3 nanoparticles. The solvent composition was found to exert a pronounced influence on the pore structure, defect concentration, and surface oxygen species. Gas-sensing measurements reveal that the MOF-In2O3 sensor delivered the best TEA-sensing performance at 240 °C, with a response of 77 toward 100 ppm TEA, relatively fast response/recovery behavior, a detection limit down to 0.5 ppm, and good selectivity and long-term stability. The superior performance can be attributed to the continuous gas-diffusion channels constructed by nanoparticle assembly, abundant oxygen vacancies and chemisorbed oxygen species that promote surface oxidation reactions, and the effective catalytic oxidation capability of In2O3 toward TEA molecules. This study demonstrates that regulating the solvent composition during MOF precursor synthesis is a simple and effective route to optimize the microstructure and surface defects of In2O3 for improved TEA gas sensing. Full article
(This article belongs to the Section Porous Materials)
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21 pages, 10215 KB  
Article
Thermal–Physical Pretreatment and Extraction of Indium from LCD Waste Stream
by Napat Mahiwan, Chatisa Kansomket, Sumita Chailoi, Natthicha Ma-Ud, Sakhob Khumkoa, Teerawut Tunnukij and Tapany Patcharawit
Recycling 2026, 11(8), 146; https://doi.org/10.3390/recycling11080146 - 10 Aug 2026
Viewed by 450
Abstract
Liquid Crystal Display (LCD) waste from various sources, such as TVs, desktop monitors, and computer notebooks, is increasing and has become an environmental issue, requiring legalized disposal and practical recycling technologies to address it. LCD screens generally contain Indium–Tin–Oxide (ITO), which are critical [...] Read more.
Liquid Crystal Display (LCD) waste from various sources, such as TVs, desktop monitors, and computer notebooks, is increasing and has become an environmental issue, requiring legalized disposal and practical recycling technologies to address it. LCD screens generally contain Indium–Tin–Oxide (ITO), which are critical and valuable metals worth recovering. The aim of this research is to optimize the thermal–physical pretreatment of LCD screens after dismantling to effectively recover indium via leaching and solvent extraction at an acceptable recovery rate. A comparative study was conducted on the recovery of indium from LCD waste from TVs and a mixed waste stream, where the latter source represents the total proportion of LCD waste accumulation. This comparison aimed to identify key factors for effective recovery from TV and mixed waste streams, containing lower and higher amounts of indium, respectively. The recovery process consisted of waste pretreatment, leaching, and solvent extraction. In the first pretreatment, ethanol immersion was found to be the most practical for polarizing film removal for both streams in comparison with manual peeling, water immersion, surface heating, and calcination. Comminution in the second pretreatment aimed to increase the surface area for the subsequent chemical reaction. For both streams, HCl leaching allowed effective indium recovery of >99.9% at the optimal conditions of 5 M HCl with 10% H2O2 addition and an S/L ratio of 500 g/L under ultrasonication for 1 h. Subsequent purification via solvent extraction was conducted to exclude iron as the key impurity. In solvent extraction, D2EHPA concentration, pH, and the organic-to-aqueous ratio (O:A) was investigated. Optimal solvent extraction was achieved using 0.25 M D2EHPA at pH 1 and an O/A ratio of 1:5 for 5 min, while ascorbic acid was added to eliminate undesirable iron. Although both waste streams achieved >99.9% leaching efficiency, they exhibited different extraction behaviors after scrubbing and stripping. The TV waste stream achieved 74.32% solvent extraction efficiency. The higher indium recovery of 84.34% via solvent extraction through the stripping of the mixed stream might be due to the higher initial indium concentration reacting with D2EHPA. This led to the overall recovery of the two waste streams as 70.22% and 80.24% for TV and mixed waste streams, respectively, possibly due to higher amounts of indium in the initial waste stream. The findings of this study serve as research and practical guidance for indium recovery and EOL–LCD recycling. Full article
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18 pages, 9006 KB  
Article
The Influence of Indium Component on the Preparation of a-IGZO Metal-Semiconductor-Metal Ultraviolet Photodetector by Sol–Gel Method
by Xianrong Liu, Yong Li, Shun Li, Jie Peng, Ji Li, Hao Qin, Mingzhe Hu, Tianjun Dai, Yanbin Huang, Qin Tian, Lei Zha, Xiaoqiang Wang, Jiangping Luo and Zhangyu Zhou
Coatings 2026, 16(4), 494; https://doi.org/10.3390/coatings16040494 - 18 Apr 2026
Cited by 1 | Viewed by 571
Abstract
In this study, the indium (In) composition in amorphous indium gallium zinc oxide (a-IGZO) thin films was systematically varied from 33% to 84% using a sol–gel process. Subsequently, aluminum/IGZO/aluminum (Al/IGZO/Al) metal–semiconductor–metal (MSM) UV photodetectors were fabricated to investigate the influence of composition on [...] Read more.
In this study, the indium (In) composition in amorphous indium gallium zinc oxide (a-IGZO) thin films was systematically varied from 33% to 84% using a sol–gel process. Subsequently, aluminum/IGZO/aluminum (Al/IGZO/Al) metal–semiconductor–metal (MSM) UV photodetectors were fabricated to investigate the influence of composition on the structural, optical, and photoelectric properties. The results indicate that all films maintain an amorphous structure despite the increasing In content, while the ratio of oxygen vacancies, Ovac/(M-O + Ovac), rises from 36% to 52%. Concurrently, the optical bandgap decreases from 2.92 eV to 2.32 eV. Under a bias of 20 V, the dark current increases from 2.11 × 10−9 A to 1.90 × 10−5 A as the In content rises. When illuminated by a 360 nm LED with a power density of 8.6 mW/cm2, the device with 60% In exhibits a photocurrent-to-dark-current ratio of approximately 104, a responsivity of 19.45 A/W, and a specific detectivity of 8.19 × 1012 Jones. The response time and recovery time of this device are 39.8 s and 577.4 s, respectively. These findings reveal a competitive relationship between enhanced optical absorption and defect generation induced by In composition, providing valuable guidance for the performance optimization of a-IGZO UV photodetectors through compositional engineering. Full article
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22 pages, 2091 KB  
Review
Separation Strategies for Indium Recovery: Exploring Solvent Extraction, Ion-Exchange, and Membrane Methods
by Ewa Rudnik
Metals 2026, 16(2), 156; https://doi.org/10.3390/met16020156 - 27 Jan 2026
Cited by 2 | Viewed by 2294
Abstract
Indium is a strategically important metal, essential for the production of transparent conductive oxides, flat panel displays, thin-film photovoltaics, and advanced optoelectronic devices. Due to its limited natural abundance and its occurrence in trace amounts alongside other metals in both primary and secondary [...] Read more.
Indium is a strategically important metal, essential for the production of transparent conductive oxides, flat panel displays, thin-film photovoltaics, and advanced optoelectronic devices. Due to its limited natural abundance and its occurrence in trace amounts alongside other metals in both primary and secondary sources, the recovery of indium through efficient separation techniques has gained increasing attention. This review discusses three major separation strategies for indium recovery: solvent extraction, ion-exchange, and membrane processes, applied to both synthetic solutions and real leachates. D2EHPA has demonstrated its applicability as an effective agent for indium separation, not only in solvent extraction but also as an impregnating agent in polymer resins and membranes. While solvent extraction achieves high recovery rates, ion-exchange resins and membrane-based methods offer significant advantages in terms of reusability, reduced chemical consumption, and minimal environmental impact. The selective separation of indium from impurities such as Fe3+ and Sn2+ remains a key consideration, which can be addressed by optimizing feed solution conditions or adjusting the selective stripping stages. A comparative overview of these methods is provided, focusing on separation efficiency, operational conditions, and potential integration into close-loop systems. The article highlights recent innovations and outlines the challenges involved in achieving sustainable indium recovery, in line with circular economy principles. Full article
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11 pages, 1754 KB  
Article
In2O3 Cauliflower Modified with Au Nanoparticles for O3 Gas Detection at Room Temperature
by Xiumei Xu, Yi Zhou, Mengmeng Dai, Haijiao Zhang, Jing Xu, Gui Wang, Gang Yang and Yongsheng Zhu
Nanomaterials 2026, 16(1), 50; https://doi.org/10.3390/nano16010050 - 30 Dec 2025
Cited by 1 | Viewed by 773
Abstract
Metal oxide semiconductor (MOS)-based chemiresistive gas sensors, attributable to their low cost, compact structure, and long operational lifetime, have been widely employed for the detection and monitoring of trace ozone (O3) in environmental air. Moreover, as ozone is a highly reactive [...] Read more.
Metal oxide semiconductor (MOS)-based chemiresistive gas sensors, attributable to their low cost, compact structure, and long operational lifetime, have been widely employed for the detection and monitoring of trace ozone (O3) in environmental air. Moreover, as ozone is a highly reactive oxidizing species extensively used in medical device sterilization, hospital disinfection, and food processing and preservation, accurate monitoring of ozone concentration is also essential in medical sanitation and food safety inspection. However, their practical applications are often limited by insufficient sensitivity and the requirement for elevated operating temperatures. In this study, Au-modified indium oxide (Au-In2O3) nanocomposite sensing materials were synthesized via a hydrothermal route followed by surface modification. Structural and morphological characterizations confirmed the uniform dispersion of Au nanoparticles on the In2O3 surface, which is expected to enhance the interaction between the sensor and target gas molecules. The resulting Au-In2O3 sensor exhibited excellent O3 sensing performance under room-temperature conditions. Compared with pristine In2O3, the Au-In2O3 sensor with 1.0 wt% Au modification demonstrated a remarkably enhanced response of 1398.4 toward 1 ppm O3 at room temperature. Moreover, the corresponding response/recovery times were shortened to 102/358 s for Au-In2O3. The outstanding O3 sensing performance can be attributed to the synergistic effects of Au nanoparticles, including the spillover effect and the formation of a Schottky junction at the Au-In2O3 interface. These results suggest that Au-modified In2O3 cauliflower represents a highly promising candidate material for high performance O3 sensing at low operating temperatures. Full article
(This article belongs to the Section Nanoelectronics, Nanosensors and Devices)
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17 pages, 2434 KB  
Article
Highly Sensitive Electrochemical Detection of Levofloxacin Using a Mn (III)-Porphyrin Modified ITO Electrode
by Fatma Rejab, Nour Elhouda Dardouri, Nicole Jaffrezic-Renault and Hamdi Ben Halima
Chemosensors 2026, 14(1), 2; https://doi.org/10.3390/chemosensors14010002 - 19 Dec 2025
Cited by 2 | Viewed by 1236
Abstract
This work presents the design of a novel electrochemical sensor for highly sensitive determination of LEV, utilizing a sensing platform based on a newly synthesized, high-purity manganese (III) porphyrin complex [5,10,15,20-tetrayltetrakis(2-methoxybenzene-4,1-diyl) tetraisonicotinateporphyrinato] manganese (III) porphyrin (MnTMIPP). The successful synthesis of the MnTMIPP complex [...] Read more.
This work presents the design of a novel electrochemical sensor for highly sensitive determination of LEV, utilizing a sensing platform based on a newly synthesized, high-purity manganese (III) porphyrin complex [5,10,15,20-tetrayltetrakis(2-methoxybenzene-4,1-diyl) tetraisonicotinateporphyrinato] manganese (III) porphyrin (MnTMIPP). The successful synthesis of the MnTMIPP complex was verified using ultraviolet–visible (UV–Vis) and infrared spectroscopy (IR). The sensing electrode was fabricated by depositing the synthesized material onto an indium tin oxide (ITO) electrode via a drop-coating method. Under optimized experimental conditions, the proposed sensor demonstrated a wide dynamic range, from 10−9 M to 10−3 M, with a low calculated detection limit of 4.82 × 10−10 M. Furthermore, the MnTMIPP/ITO electrode displayed interesting metrological performance: high selectivity, reproducibility, and stability. Successful application in spiked river water and saliva samples with satisfactory recovery rates confirms the sensor’s potential as a reliable and cost-effective platform for monitoring LEV in real-world environments. Full article
(This article belongs to the Special Issue Nanostructured Materials for Electrochemical Sensing)
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18 pages, 5209 KB  
Article
Indium Recovery from ITO in LCD Glass Using Magnetic Separation and Sulfuric Acid: Influence of Fractions and Process Conditions
by Joanna Willner, Iva Janakova, Magdalena Jablonska-Czapla, George Yandem, David Hrecin and Jana Sedlakova-Kadukova
Processes 2025, 13(12), 3917; https://doi.org/10.3390/pr13123917 - 4 Dec 2025
Cited by 3 | Viewed by 1224
Abstract
This study emphasizes the role of magnetic separation as a novel pretreatment strategy for the recovery of indium from ITO coatings in LCD screen glass. Previous studies have primarily focused on the magnetic separation of leaching residues. In this work, a reverse approach [...] Read more.
This study emphasizes the role of magnetic separation as a novel pretreatment strategy for the recovery of indium from ITO coatings in LCD screen glass. Previous studies have primarily focused on the magnetic separation of leaching residues. In this work, a reverse approach is proposed, and for the first time, magnetic separation was systematically applied prior to leaching. Our results demonstrate that indium accumulates in the ferromagnetic fraction, indicating its association with Fe-rich phases. In addition to Fe, the behavior of Sr and Si was also evaluated, providing a broader understanding of elemental distribution within LCD glass. This finding offers new insights into the distribution and mobility of indium during hydrometallurgical processing and highlights magnetic separation as a valuable step for improving recovery efficiency. To establish optimal leaching conditions, preliminary experiments were performed on ground LCD glass using sulfuric acid at three concentrations (0.1, 1, and 5 M) and two temperatures (21 °C and 65 °C) for both coarse (>1 mm) and fine (<1 mm) particle fractions. All residues and solid-state analyses were performed using the XRF method. Acid molarity was found to be the dominant factor controlling indium dissolution, with 5 M H2SO4 selected as the most effective leaching medium. Statistical evaluation further clarified the dissolution trends of these elements and confirmed the significance of magnetic separation in enhancing the efficiency of indium recovery. Full article
(This article belongs to the Special Issue Advances in Solid Waste Treatment and Design (2nd Edition))
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10 pages, 1799 KB  
Proceeding Paper
Recovery of Indium Tin Oxide Metals from Mobile Phone Screens Using Acidithiobacillus spp. Bacterial Culture
by David Hrečin and Iva Janáková
Eng. Proc. 2025, 116(1), 21; https://doi.org/10.3390/engproc2025116021 - 1 Dec 2025
Viewed by 1037
Abstract
This study explores the bioleaching potential of indium from Liquid Crystal Display (LCD) screens originating from end-of-life mobile phones using Acidithiobacillus spp. The LCD panels were mechanically processed, including dismantling, crushing, and milling, and separated into four size fractions: <1 mm, 1–1.5 mm, [...] Read more.
This study explores the bioleaching potential of indium from Liquid Crystal Display (LCD) screens originating from end-of-life mobile phones using Acidithiobacillus spp. The LCD panels were mechanically processed, including dismantling, crushing, and milling, and separated into four size fractions: <1 mm, 1–1.5 mm, 1.5–2 mm and >2 mm. These fractions were leached for a period of four weeks. During the experiment, changes in pH value were monitored, and the concentrations of indium in the solutions were measured by using inductively coupled plasma optical emission spectrometry (ICP-OES). The results showed that the highest indium was detected after 4 weeks of leaching for fraction FG <1 mm (146.47 mg/L). The study confirms that bioleaching is an effective and environmentally friendly method for the recovery of critical raw materials such as indium from electronic waste, offering a promising alternative to conventional chemical and pyrometallurgical techniques. Full article
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16 pages, 4179 KB  
Article
Hydrometallurgical Recovery of Critical Metal Indium from Scrap LCD Panels
by Karina Rani, Rekha Panda, Ankur Sharma, Alok Kumar Meher, Balram Ambade, Kyoungkeun Yoo and Manis Kumar Jha
Minerals 2025, 15(10), 1084; https://doi.org/10.3390/min15101084 - 18 Oct 2025
Cited by 5 | Viewed by 1753
Abstract
Indium, widely used in indium–tin oxide (ITO) coatings for liquid crystal displays (LCDs), is a scarce and strategically important metal with increasing demand. Recycling waste LCD panels offers an efficient secondary source to address supply risks and environmental concerns. In this study, a [...] Read more.
Indium, widely used in indium–tin oxide (ITO) coatings for liquid crystal displays (LCDs), is a scarce and strategically important metal with increasing demand. Recycling waste LCD panels offers an efficient secondary source to address supply risks and environmental concerns. In this study, a hydrometallurgical flow sheet was developed under mild conditions for indium (In) recovery. Leaching trials with sulphuric acid at varying concentrations, pulp densities, temperatures, and times showed that 5% H2SO4 (v/v) with 100 g/L pulp density at 60 °C for 30 min achieved ~98% dissolution of In, while minimizing the co-leaching of Al and Sn. Kinetic analysis indicated a diffusion-controlled mechanism for In dissolution with an activation energy of 21.2 kJ mol−1. The leached liquor was further purified through solvent extraction by 20% Cyanex 921 (v/v), achieving optimum In extraction at pH 2.5 with an organic-to-aqueous phase ratio of 1/3, reaching equilibrium within 15 min. The McCabe–Thiele plot shown indicates the complete In extraction in two stages. FT-IR studies confirmed the In-extractant bonding at optimized conditions. 10% H2SO4 (v/v) was used for the stripping of In from the loaded organic, ensuring nearly complete back-transfer of indium with excellent phase separation. The integrated process yielded ~97% In recovery in stripping. The pure salt of Indium could be obtained by evaporation/crystallization of pure indium solution. The developed process has the potential to be transferred for commercial exploitation after scale-up and pilot trial. Full article
(This article belongs to the Special Issue Application of Nanomaterials in Mineral Processing)
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21 pages, 4657 KB  
Article
Fixed-Bed Adsorption of Gallium and Indium from EoL CIGS Leachates on Extractant-Mesoporous Carbon: Integrated Experimental Simulation Approach
by Víctor Ramos, Alejandra Vázquez Adán, Arturo Jiménez, Rubén Miranda, Eduardo Díez and Araceli Rodríguez
Surfaces 2025, 8(3), 59; https://doi.org/10.3390/surfaces8030059 - 22 Aug 2025
Viewed by 1817
Abstract
Although the exponential increase in photovoltaic installations does contribute to mitigating climate change, it has posed the problem of photovoltaic (PV) residue. As PV panels contain strategic metals, their recovery has become a priority. This paper therefore employs a mesoporous carbon impregnated with [...] Read more.
Although the exponential increase in photovoltaic installations does contribute to mitigating climate change, it has posed the problem of photovoltaic (PV) residue. As PV panels contain strategic metals, their recovery has become a priority. This paper therefore employs a mesoporous carbon impregnated with P507 extractant as adsorbent to selectively recover gallium and indium from solutions simulating the leachate of end-of-life CIGS (Copper Indium Gallium Selenide) cells in a fixed-bed. The previous batch results obtained in our lab show that both metals can be selectively separated by simply adjusting the initial pH, with large adsorption capacities (44.97 mg/g for gallium and 34.24 mg/g for indium). The obtained breakthrough curves were fitted to the Thomas, Yan, Yoon, and HSDM (Homogeneous Surface Diffusion Model) models using a simulation program developed in Python 3.12 obtaining good results in all cases (R2 > 0.9). The estimated parameters were used to predict the experimental breakthrough curve for a different experiment that had not been used for parameter estimation, being the best predictive results the obtained with the HSDM. This is logical, given that unlike the other three models, it is mechanistic. Full article
(This article belongs to the Collection Featured Articles for Surfaces)
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12 pages, 2279 KB  
Article
Electrostatic Self-Assembly of Heterostructured In2O3/Ti3C2Tx Nanocomposite for High-Selectivity NO2 Gas Sensing at Room Temperature
by Yongjing Guo, Zhengxin Zhang, Hangshuo Feng, Qingfu Dai, Qiuni Zhao, Zaihua Duan, Shenghui Guo, Li Yang, Ming Hou and Yi Xia
Chemosensors 2025, 13(7), 249; https://doi.org/10.3390/chemosensors13070249 - 10 Jul 2025
Cited by 7 | Viewed by 1411
Abstract
Owing to high electrical conductivity, layered structure, and abundant surface functional groups, transition metal carbides/nitrides (MXenes) have received enormous interest in the field of gas sensors at room temperature. In this work, we synthesize a heterostructured nanocomposite with indium oxide (In2O [...] Read more.
Owing to high electrical conductivity, layered structure, and abundant surface functional groups, transition metal carbides/nitrides (MXenes) have received enormous interest in the field of gas sensors at room temperature. In this work, we synthesize a heterostructured nanocomposite with indium oxide (In2O3) decorated on titanium carbide (Ti3C2Tx) nanosheets by electrostatic self-assembly and develop it for high-selectivity NO2 gas sensing at room temperature. Self-assembly formation of multiple heterojunctions in the In2O3/Ti3C2Tx composite provide abundant NO2 gas adsorption sites and high electron transfer activity, which is conducive to improving the gas-sensing response of the In2O3/Ti3C2Tx gas sensor. Assisted by rich adsorption sites and hetero interface, the as-fabricated In2O3/Ti3C2Tx gas sensor exhibits the highest response to NO2 among various interference gases. Meanwhile, a detection limit of 0.3 ppm, and response/recovery time (197.62/93.84 s) is displayed at room temperature. Finally, a NO2 sensing mechanism of In2O3/Ti3C2Tx gas sensor is constructed based on PN heterojunction enhancement and molecular adsorption. This work not only expands the gas-sensing application of MXenes, but also demonstrates an avenue for the rational design and construction of NO2-sensing materials. Full article
(This article belongs to the Special Issue Functional Nanomaterial-Based Gas Sensors and Humidity Sensors)
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18 pages, 7713 KB  
Article
Enrichment Regularity of Indium in the Dulong Mineral Processing Plant, Yunnan Province, China
by Peiqiang Fan, Xiong Tong, Xian Xie, Qiang Song, Ruiqi Xie, Bin Han, Haitao Fu and Zhiming Lu
Minerals 2025, 15(7), 672; https://doi.org/10.3390/min15070672 - 23 Jun 2025
Viewed by 1651
Abstract
The Dulong deposit in Wenshan, southeastern Yunnan Province, is rich in zinc, tin, and copper resources, accompanied by rare metals such as indium and silver. It is a particularly important indium production base, with reserves of approximately 7000 tons, ranking first globally. Enrichment [...] Read more.
The Dulong deposit in Wenshan, southeastern Yunnan Province, is rich in zinc, tin, and copper resources, accompanied by rare metals such as indium and silver. It is a particularly important indium production base, with reserves of approximately 7000 tons, ranking first globally. Enrichment and recovery of indium-bearing minerals are mainly achieved through mineral processing technology. However, the recovery rate of indium in the Dulong concentrator remains relatively low, and there is an insufficient understanding of its occurrence state and distribution characteristics, resulting in marked indium resource wastage. Here, we conducted a systematic process mineralogy study on indium-bearing polymetallic ore in the Dulong concentrator. The average grade of indium in the ore is 43.87 g/t, mainly occurring in marmatite (63.63%), supplemented by that in silicate minerals (23.31%), chalcopyrite (7.84%), and pyrrhotite (4.22%). The indium has a relatively dispersed distribution, which is inconducive to enrichment and recovery. The substitution mechanism of indium in marmatite was investigated using laser ablation inductively coupled plasma mass spectrometry. This revealed a positive correlation between indium and copper, allowing us to revise the substitution relationship to: ZnxS+Cu++In3+Znx2CuInS+2Zn2+ or Znx1FeS+Cu++In3+Znx2CuInS+Zn2++Fe2+. Electron probe microanalysis revealed the presence of roquesite (CuInS2), an independent indium mineral not previously reported from this deposit. Our detailed investigation of the Dulong concentrator mineral processing technology showed that the recovery rate of indium from marmatite is currently poor, at only 48.01%. To improve the comprehensive utilization rate of indium resources, it will be necessary to further increase the recovery rate from marmatite and explore the flotation recovery of indium from chalcopyrite and pyrrhotite. Full article
(This article belongs to the Section Mineral Processing and Extractive Metallurgy)
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16 pages, 5244 KB  
Article
The Sensing Selectivity of Gas Sensors Based on Different Sn-Doped Indium Oxide Films
by Haoran Sheng, Haoyu Li, Yujie Huang, Bochao Zhang, Jiarui Liang, Xinze Zhou, Yuan Tian and Qiang Li
Chemosensors 2025, 13(5), 169; https://doi.org/10.3390/chemosensors13050169 - 5 May 2025
Cited by 3 | Viewed by 3463
Abstract
The gas-sensitive performance and selectivity of gas sensors via different Sn-doped indium oxide (In2O3) films have been investigated. The response characteristics were significantly enhanced to methanol (CH4O), ethanol (C2H6O), and acetone (C3 [...] Read more.
The gas-sensitive performance and selectivity of gas sensors via different Sn-doped indium oxide (In2O3) films have been investigated. The response characteristics were significantly enhanced to methanol (CH4O), ethanol (C2H6O), and acetone (C3H6O) with the increase in Sn content, while the response time and the recovery time became shorter. The sensor exhibited the strongest response to ethanol, followed by acetone and then methanol with all the ratios of In2O3 (90%, 85%, and 80%) and SnO2 (10%, 15%, and 20%). The mechanism of Sn doping on the gas sensing selectivity was calculated using the density functional theory (DFT) method, which perfectly explained the experimental results. The sensors demonstrated high selectivity towards ethanol, even in the presence of interfering gases. In addition, the sensors showed effective detection of the target gas with 10 ppb and demonstrated good repeatability. This work systematically analyzed the priority selectivity of In2O3-based gas sensors, providing a new path for gas detection in multi-interference and complex environments. Full article
(This article belongs to the Special Issue Functional Nanomaterial-Based Gas Sensors and Humidity Sensors)
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19 pages, 5650 KB  
Article
Study of Operational Parameters on Indium Electrowinning Using a Ti Cathode
by Carla Lupi, Erwin Ciro and Alessandro Dell’Era
Materials 2025, 18(9), 2089; https://doi.org/10.3390/ma18092089 - 2 May 2025
Cited by 3 | Viewed by 1413
Abstract
Indium, widely used as indium-tin oxide (ITO), has been recognized as a strategical metal for audiovisual, optoelectronic systems, semiconductors and photovoltaic fields. An increasing shortage and unflexible mineral supply have led indium to be recovered from secondary sources, such as waste electrical and [...] Read more.
Indium, widely used as indium-tin oxide (ITO), has been recognized as a strategical metal for audiovisual, optoelectronic systems, semiconductors and photovoltaic fields. An increasing shortage and unflexible mineral supply have led indium to be recovered from secondary sources, such as waste electrical and electronic equipment (WEEE). The main step for indium hydrometallurgical recovery from WEEE is the electrowinning process using sulfate baths, giving lower environmental impact and improved workplace safety conditions. In this investigation, a titanium cathode has been employed for the study of the indium electrowinning process in a sulfate-based bath. This study was focused on analyzing current efficiency (CE), specific energy consumption (SEC) and deposit morphology and structure as the temperature, current density, pH and electrolyte composition were varied. Prior to conducting electrowinning tests, a conventional three-electrode cell was used to perform cyclic voltametric assessments of the electrodeposition reactions on the Ti electrode at room temperature. The indium electrowinning tests on Ti cathodes presented CE values higher than 90%, with low energy consumption at low current densities, showing a negligible influence of additive agents in the bath, different from results obtained with other cathodes in other works. Moreover, the increase of the current density beyond 75 A/m2 produced significant effects by etching the electrode surface with 1M HF. In particular, at the conclusion of this investigation, good results are obtained without additives, by etching the titanium cathode and operating at higher current density between 100 and 200 A/m2 at pH 2.3 and different temperatures (40 °C and 60 °C). Finally, indium deposits were analyzed by XRD and SEM in order to determine the influence of operative conditions on the structure and surface morphology. Full article
(This article belongs to the Special Issue Advances in Electronic and Photonic Materials)
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