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Antimony Tin Oxide Nanoparticle Market Size, Share, Growth, and Industry Analysis, By Type (Binary ATO Nanoparticles,Core-Shell ATO Nanoparticles,Doped ATO Nanoparticles), By Application (Electronics,Solar Energy,Optics,Sensors,Coatings and Films,Catalysts,Automotive), Regional Insights and Forecast to 2035

Antimony Tin Oxide Nanoparticle Market Overview

Global Antimony Tin Oxide Nanoparticle Market size in 2026 is estimated to be USD 452.49 million, with projections to grow to USD 740.21 million by 2035 at a CAGR of 5.7%.

The Antimony Tin Oxide Nanoparticle Market is gaining traction due to the increasing use of transparent conductive materials in electronics, energy systems, and advanced coatings. Antimony tin oxide nanoparticles typically contain 5%–15% antimony doped into tin oxide matrices to improve electrical conductivity and optical transparency. Particle sizes commonly range between 10 nm and 80 nm, enabling high surface area exceeding 40–120 m²/g, which significantly improves conductivity and catalytic activity. In industrial coatings, ATO nanoparticles can reduce infrared radiation transmission by nearly 70%, making them widely used in heat-insulating coatings and smart window technologies.

The Antimony Tin Oxide Nanoparticle Market Analysis highlights strong demand from electronics and semiconductor industries where conductive nanoparticle coatings are used in over 65% of anti-static applications. Conductive films incorporating ATO nanoparticles exhibit sheet resistances between 10⁴ and 10⁷ ohm/sq depending on doping levels and dispersion concentration. In solar energy systems, ATO nanoparticle coatings improve optical transparency by up to 85% while maintaining conductivity levels required for transparent electrodes.

The USA Antimony Tin Oxide Nanoparticle Market represents a major share of advanced nanomaterial demand due to strong semiconductor manufacturing, renewable energy installations, and advanced coatings industries. The United States accounts for approximately 18% of global nanotechnology research output, with over 120 nanotechnology research centers supporting materials innovation including antimony tin oxide nanoparticle development. In the U.S., more than 65 semiconductor fabrication facilities operate across states such as Arizona, Texas, and California, increasing demand for electrostatic discharge coatings and conductive nanomaterials. ATO nanoparticles are commonly used in cleanroom flooring coatings where surface resistivity must remain between 10⁶ and 10⁹ ohms to prevent electrostatic discharge damage to microchips.

Solar energy deployment also contributes to Antimony Tin Oxide Nanoparticle Market Growth in the United States. In 2024, solar photovoltaic capacity installations exceeded 150 GW nationwide, increasing demand for conductive coatings used in solar modules and transparent electrodes. ATO nanoparticles help maintain optical transmission levels above 80% while enhancing electrical conductivity in photovoltaic coatings. The United States construction sector also uses ATO nanoparticle coatings in energy-efficient smart windows. Approximately 38% of new commercial buildings installed low-emissivity glass technologies incorporating infrared-blocking nanoparticles to reduce building heat gain. Automotive manufacturers in the U.S. also integrate infrared-blocking coatings containing ATO nanoparticles in windshields and sunroofs to reduce cabin heat by nearly 45%.

Global Antimony Tin Oxide Nanoparticle Market Size,

Key Findings

  • Key Market Driver: Approximately 64% increasing electronics demand significantly accelerates global adoption of antimony tin oxide nanoparticle conductive coatings.
  • Major Market Restraint: Nearly 42% raw material supply volatility significantly restricts stable production of antimony tin oxide nanoparticles globally.
  • Emerging Trends: Around 51% rising smart glass installations strongly increase adoption of infrared blocking antimony tin oxide nanoparticles.
  • Regional Leadership: Approximately 54% manufacturing concentration in Asia Pacific drives dominant production of antimony tin oxide nanoparticles.
  • Competitive Landscape: Nearly 48% global production controlled by leading manufacturers strengthening competition within antimony tin oxide nanoparticle industry.
  • Market Segmentation: About 44% demand share dominated by binary antimony tin oxide nanoparticles across multiple industrial applications.
  • Recent Development: Around 41% manufacturers expanded nanoparticle production facilities improving global supply of antimony tin oxide materials.

The Antimony Tin Oxide Nanoparticle Market Trends show increasing adoption of conductive nanomaterials across electronics, renewable energy, and smart coating industries. One major trend in the Antimony Tin Oxide Nanoparticle Market Analysis is the growing use of transparent conductive oxides in optoelectronic devices. ATO nanoparticles provide optical transparency levels between 75% and 90% while maintaining electrical conductivity suitable for thin film electronics and sensor applications. Smart window technologies represent another significant trend highlighted in the Antimony Tin Oxide Nanoparticle Market Report. ATO nanoparticle coatings can block up to 90% of near-infrared radiation while maintaining visible light transmission above 80%. Buildings using infrared-blocking glass coatings have reported energy consumption reductions of nearly 25% in climate control systems. Approximately 32% of new energy-efficient commercial buildings integrate nanoparticle-based window coatings for thermal management.

The Antimony Tin Oxide Nanoparticle Market Research Report also identifies increasing use in solar energy technologies. Transparent conductive nanoparticle coatings improve photovoltaic module performance by enhancing light absorption efficiency by approximately 12%. Solar panel manufacturers use ATO nanoparticle dispersions in transparent electrodes with resistivity values between 10⁻³ and 10⁻¹ ohm·cm depending on doping concentration. Flexible electronics manufacturing has also emerged as a key trend in the Antimony Tin Oxide Nanoparticle Industry Analysis. Flexible displays, wearable electronics, and smart sensors require conductive transparent coatings capable of maintaining conductivity under bending stress exceeding 1,000 bending cycles. ATO nanoparticle coatings provide electrical stability and transparency required for OLED displays and touch panels.

Antimony Tin Oxide Nanoparticle Market Dynamics

DRIVER

"Rising demand for transparent conductive coatings in electronics and solar energy."

The Antimony Tin Oxide Nanoparticle Market Growth is strongly driven by increasing demand for transparent conductive coatings used in electronic displays, sensors, and solar modules. Transparent conductive oxides are used in approximately 70% of touchscreens and display panels worldwide. ATO nanoparticles provide conductivity levels between 10⁻² and 10⁻¹ S/cm while maintaining optical transparency above 80%. In photovoltaic modules, conductive nanoparticle coatings improve energy conversion efficiency by approximately 10%–15%. Electronics manufacturing facilities use ATO-based anti-static coatings to maintain surface resistivity levels between 10⁶ and 10⁹ ohms. Over 500 million electronic devices produced annually incorporate conductive oxide coatings for improved electrical stability and electrostatic protection.

RESTRAINT

"Limited availability and price fluctuations of antimony raw materials."

Antimony supply limitations influence the Antimony Tin Oxide Nanoparticle Industry because antimony is a relatively scarce element used in flame retardants, batteries, and semiconductor materials. Global antimony mine production remains concentrated, with nearly 70% of output originating from limited mining regions. Nanoparticle manufacturing requires antimony doping concentrations between 5% and 15%, which increases dependency on stable supply chains. Approximately 32% of nanomaterial producers report supply volatility affecting production planning. Additionally, purification and nanoparticle synthesis processes require high-temperature calcination above 500°C, increasing production costs. Environmental regulations governing antimony processing also affect nearly 25% of manufacturing facilities involved in nanoparticle synthesis.

OPPORTUNITY

"Expansion of smart coatings and energy-efficient architectural materials."

The Antimony Tin Oxide Nanoparticle Market Opportunities are increasing due to expanding smart coatings in construction and transportation industries. Infrared reflective coatings containing ATO nanoparticles reduce solar heat gain by nearly 60% in glass surfaces. More than 35% of modern commercial buildings incorporate energy-efficient glazing technologies to reduce cooling energy consumption. ATO nanoparticle coatings maintain visible light transmission levels above 80% while blocking up to 90% of near-infrared radiation. Automotive glazing technologies also integrate infrared-blocking nanoparticle coatings to improve passenger comfort. In electric vehicles, heat-reducing window coatings help reduce air conditioning energy consumption by nearly 20%, improving vehicle battery efficiency and driving range.

CHALLENGE

"Technical complexities in nanoparticle dispersion and stability."

A major challenge in the Antimony Tin Oxide Nanoparticle Market Forecast involves maintaining stable nanoparticle dispersion in coatings and inks. Nanoparticles with diameters between 10 nm and 50 nm tend to agglomerate due to strong van der Waals forces, reducing conductivity and optical transparency. Approximately 27% of nanomaterial manufacturers report dispersion stability issues affecting coating performance. Achieving uniform distribution requires specialized surfactants and ultrasonic dispersion processes. Coating formulations typically require nanoparticle concentrations between 1% and 5%, and improper dispersion can reduce conductivity performance by nearly 30%. Manufacturing processes also require precise control of particle size distribution to maintain optical clarity and electrical conductivity.

Antimony Tin Oxide Nanoparticle Market Segmentation

The Antimony Tin Oxide Nanoparticle Market Segmentation includes types such as binary nanoparticles core shell nanoparticles and doped nanoparticles and applications including electronics solar energy optics sensors coatings films catalysts and automotive technologies driving widespread industrial demand globally.

Global Antimony Tin Oxide Nanoparticle Market Size, 2035

BY TYPE

Binary ATO Nanoparticles: Binary antimony tin oxide nanoparticles consist primarily of tin oxide doped with antimony concentrations between 5% and 10%. Particle sizes typically range from 20 nm to 60 nm with surface areas reaching 50–90 m²/g. These nanoparticles are widely used in conductive coatings and electrostatic discharge materials. Binary ATO nanoparticles provide electrical conductivity values around 10⁻² S/cm and optical transparency exceeding 80%. Approximately 44% of conductive oxide nanoparticle demand comes from binary ATO formulations due to their relatively simple synthesis and stable dispersion characteristics. Electronics manufacturing industries use binary nanoparticles in antistatic coatings where surface resistivity requirements range between 10⁶ and 10⁹ ohms.

Core-Shell ATO Nanoparticles: Core-shell ATO nanoparticles consist of a conductive antimony tin oxide shell surrounding a silica or metal oxide core typically measuring 30 nm to 80 nm in diameter. The shell thickness generally ranges between 5 nm and 15 nm, providing controlled conductivity and optical properties. Core-shell nanoparticles improve dispersion stability by nearly 25% compared to conventional nanoparticles. These materials are widely used in optical coatings and smart window technologies where infrared radiation blocking efficiency can reach 85%–90%. Approximately 20% of nanoparticle coating formulations in architectural glass use core-shell conductive nanoparticles due to improved transparency and enhanced thermal insulation performance.

Doped ATO Nanoparticles: Doped ATO nanoparticles contain antimony doping concentrations ranging from 10% to 15%, significantly enhancing electrical conductivity. These nanoparticles typically exhibit particle sizes between 10 nm and 40 nm with conductivity values approaching 10⁻¹ S/cm. Doped ATO nanoparticles are widely used in sensors, transparent conductive films, and optoelectronic devices. Approximately 36% of conductive nanoparticle demand in advanced electronics involves doped formulations due to higher electron mobility. Research laboratories report that higher doping concentrations can increase charge carrier density by nearly 40%. These nanoparticles are also used in lithium-ion battery electrodes and catalytic materials for electrochemical applications.

BY APPLICATION

Electronics: Electronics represents one of the largest application segments in the Antimony Tin Oxide Nanoparticle Market. Conductive nanoparticle coatings are used in more than 65% of electronic display manufacturing processes. ATO nanoparticles are incorporated into anti-static coatings used in semiconductor cleanrooms where surface resistivity must remain between 10⁶ and 10⁹ ohms. Transparent conductive films containing nanoparticle dispersions maintain optical transmission above 85%. Flexible electronics and touchscreens rely on conductive oxide coatings with sheet resistance values between 10³ and 10⁵ ohm/sq. Approximately 500 million electronic devices produced annually utilize conductive oxide coatings to protect sensitive components from electrostatic discharge damage.

Solar Energy: Solar energy technologies increasingly utilize antimony tin oxide nanoparticles in transparent conductive coatings applied to photovoltaic cells. ATO nanoparticle coatings improve light transmission efficiency by approximately 10%–12% while maintaining electrical conductivity required for charge transport. Solar modules require transparent electrodes with resistivity values between 10⁻³ and 10⁻¹ ohm·cm. Approximately 150 GW of solar photovoltaic capacity installations worldwide require conductive oxide coatings for improved energy efficiency. ATO nanoparticle dispersions are also used in infrared reflective coatings applied to solar glass surfaces to reduce heat buildup and improve module durability under temperatures exceeding 80°C.

Optics: Optical applications utilize ATO nanoparticles for infrared blocking coatings and transparent conductive layers. Optical coatings containing nanoparticle concentrations between 2% and 5% can block up to 90% of near-infrared radiation while maintaining visible light transmission above 80%. Smart windows using these coatings reduce indoor heat gain by nearly 25% in commercial buildings. Optical display panels and projection systems also use conductive oxide coatings to prevent static charge accumulation. Approximately 32% of energy-efficient glass manufacturing processes integrate nanoparticle coatings designed for infrared reflection and thermal insulation in architectural glazing systems.

Sensors: Sensors represent a rapidly expanding application segment in the Antimony Tin Oxide Nanoparticle Market Outlook. Gas sensors using ATO nanoparticles operate at temperatures between 200°C and 350°C to detect gases such as carbon monoxide and nitrogen dioxide. Nanoparticle sensors can detect gas concentrations as low as 5 parts per million. High surface area values exceeding 100 m²/g enhance sensitivity and response times below 30 seconds. Industrial monitoring systems use conductive oxide sensors in environmental monitoring, automotive exhaust detection, and industrial safety equipment. Approximately 25% of modern semiconductor gas sensors incorporate metal oxide nanoparticles including ATO materials.

Coatings and Films: Coatings and films represent a major segment in the Antimony Tin Oxide Nanoparticle Industry Report due to increasing use in energy-efficient glass and anti-static coatings. Nanoparticle dispersions used in coatings typically contain 1%–5% ATO concentration to maintain conductivity and optical transparency. Infrared reflective coatings using ATO nanoparticles reduce solar heat gain by approximately 60%. Industrial floor coatings containing conductive nanoparticles reduce electrostatic discharge incidents by nearly 50% in electronic manufacturing facilities. Automotive coatings also use nanoparticle films to reduce interior vehicle temperature by approximately 40% during peak sunlight exposure.

Catalysts: Catalytic applications of ATO nanoparticles rely on their high surface area and electrical conductivity. Nanoparticles with surface areas above 120 m²/g provide improved catalytic activity in oxidation reactions. ATO nanoparticles are used as catalyst supports in electrochemical reactions and fuel cell systems. Catalysts containing conductive oxide nanoparticles show reaction efficiency improvements of approximately 20% compared to conventional catalyst materials. Industrial catalytic reactors also use nanoparticle coatings to improve thermal stability at temperatures exceeding 400°C. These materials are increasingly studied for hydrogen production and electrochemical water splitting processes.

Automotive: The automotive industry increasingly uses ATO nanoparticle coatings for thermal insulation and electronic protection systems. Infrared reflective coatings applied to automotive glass can block approximately 85% of near-infrared radiation, reducing cabin temperature by nearly 45%. Automotive manufacturers integrate nanoparticle coatings into windshields, sunroofs, and side windows to improve passenger comfort. Approximately 35% of electric vehicles incorporate infrared blocking glass coatings to reduce air conditioning energy consumption. Anti-static coatings containing conductive nanoparticles are also applied to automotive electronic modules to prevent electrostatic damage to onboard sensors and control systems.

Antimony Tin Oxide Nanoparticle Market Regional Outlook

The Antimony Tin Oxide Nanoparticle Market Outlook shows strong demand across Asia-Pacific, North America, Europe, and Middle East & Africa driven by electronics manufacturing, renewable energy deployment, nanotechnology research, and energy-efficient coating technologies.

Global Antimony Tin Oxide Nanoparticle Market Share, by Type 2035

NORTH AMERICA

North America holds approximately 18% share of the Antimony Tin Oxide Nanoparticle Market supported by semiconductor manufacturing and advanced nanotechnology research. The region hosts over 70 nanotechnology research institutes and more than 65 semiconductor fabrication plants. Approximately 38% of commercial buildings integrate energy-efficient glass coatings containing infrared-blocking nanoparticles. Solar photovoltaic installations in the region exceed 180 GW capacity requiring transparent conductive coatings. Electronics manufacturing facilities use anti-static nanoparticle coatings with resistivity levels between 10⁶ and 10⁹ ohms. Automotive manufacturers in the United States and Canada increasingly deploy ATO nanoparticle coatings to reduce interior heat buildup by nearly 40%.

EUROPE

Europe represents nearly 22% of the Antimony Tin Oxide Nanoparticle Market Share due to strong demand for energy-efficient construction materials and automotive technologies. Germany, France, and the United Kingdom lead nanomaterial research with more than 90 research laboratories focused on advanced coatings and conductive nanomaterials. Approximately 35% of European commercial buildings incorporate smart glass technologies using infrared reflective nanoparticle coatings. Automotive manufacturing plants across Europe produce more than 16 million vehicles annually, increasing demand for thermal insulation coatings. Environmental regulations promoting energy efficiency have increased adoption of nanoparticle-based glazing technologies by nearly 28% across architectural construction projects.

ASIA-PACIFIC

Asia-Pacific dominates the Antimony Tin Oxide Nanoparticle Market with approximately 54% share driven by large-scale electronics manufacturing and solar panel production. China, Japan, South Korea, and Taiwan host over 75% of global semiconductor fabrication capacity. More than 300 solar module manufacturing facilities operate across the region, increasing demand for transparent conductive coatings. Nanomaterial production capacity in Asia-Pacific increased by nearly 40% between 2021 and 2024. Automotive manufacturing output in the region exceeds 45 million vehicles annually, driving demand for infrared reflective glass coatings and conductive nanoparticle films used in electronic components.

MIDDLE EAST & AFRICA

The Middle East & Africa region accounts for nearly 6% of the Antimony Tin Oxide Nanoparticle Market due to increasing adoption of energy-efficient building technologies. Smart building construction projects in the Gulf region integrate infrared-blocking glass coatings capable of reducing cooling energy consumption by nearly 30%. Solar energy capacity installations exceed 30 GW across the region, increasing demand for conductive nanoparticle coatings used in photovoltaic modules. Industrial coatings containing conductive nanoparticles are also used in petrochemical facilities where electrostatic discharge prevention is critical for operational safety.

List of Top Antimony Tin Oxide Nanoparticle Companies

  • Stanford Advanced Materials
  • SkySpring Nanomaterials
  • Nanoshel
  • NanoResearch Elements Inc
  • Nano Labs
  • Nanochemzone
  • Hongwu International Group Ltd
  • Shanghai Huzheng Industrial Co., Ltd.
  • Ningbo New Dragon International Trade Co., Ltd.
  • Aritech Chemazone Private Limited

Top Two Companies with Highest Market Share

  • Stanford Advanced Materials holds approximately 14% share in the Antimony Tin Oxide Nanoparticle Market due to large-scale nanomaterial production exceeding 50 nanoparticle product grades.
  • Hongwu International Group Ltd accounts for nearly 12% market share supported by annual nanomaterial production volumes exceeding 500 tons across conductive oxide nanoparticle categories.

Investment Analysis and Opportunities

The Antimony Tin Oxide Nanoparticle Market Investment Analysis shows increasing investment activity in nanomaterial production facilities and advanced coating technologies. Between 2021 and 2024, global nanotechnology manufacturing capacity expanded by nearly 35%, supporting the production of conductive oxide nanoparticles used in electronics and renewable energy industries. Private investors and nanotechnology venture funds are focusing on transparent conductive materials used in flexible electronics and smart coatings. Approximately 45% of nanomaterial startup investments during 2023 were directed toward conductive oxide nanoparticles and optoelectronic materials. Research institutions and industrial manufacturers have established more than 120 collaborative nanotechnology research programs focused on improving nanoparticle synthesis efficiency and dispersion stability.

Investment in solar energy technologies represents a significant opportunity for the Antimony Tin Oxide Nanoparticle Market. Global solar photovoltaic installations exceeded 1,500 GW capacity in 2024, increasing demand for conductive coatings used in photovoltaic modules. Transparent conductive nanoparticles improve solar cell efficiency by nearly 12%, creating strong investment interest in nanomaterial production technologies supporting solar module manufacturing. Smart window technologies also represent an attractive investment segment. Buildings equipped with infrared reflective nanoparticle coatings can reduce cooling energy consumption by approximately 25%. Over 40% of new commercial construction projects are integrating energy-efficient glazing systems incorporating conductive oxide nanoparticles.

New Product Development

The Antimony Tin Oxide Nanoparticle Market New Product Development landscape is focused on improving electrical conductivity, optical transparency, and nanoparticle dispersion stability. Nanomaterial manufacturers are developing next-generation ATO nanoparticles with particle sizes below 20 nm to improve surface area and electrical performance. Recent product innovations include ultra-fine ATO nanoparticles with surface areas exceeding 150 m²/g designed for high-sensitivity sensor applications. These nanoparticles improve gas detection sensitivity by nearly 30% compared to conventional metal oxide sensors.

Another innovation involves surface-modified nanoparticles designed to improve dispersion stability in coatings and inks. Modified nanoparticles can remain uniformly dispersed in polymer matrices for more than 12 months without significant agglomeration. This improves coating transparency and conductivity consistency in large-scale industrial applications. Nanoparticle manufacturers are also developing high-purity conductive oxide nanoparticles with antimony doping levels precisely controlled between 8% and 12%. These materials demonstrate electrical conductivity improvements of nearly 35% compared to standard ATO nanoparticle formulations.

Five Recent Developments

  • In 2024 Hongwu International Group expanded nanoparticle manufacturing capacity by 30% reaching production capability exceeding 500 tons of conductive oxide nanoparticles annually.
  • In 2023 Stanford Advanced Materials launched new ATO nanoparticles with particle sizes below 20 nm improving electrical conductivity performance by approximately 35%.
  • In 2025 Nanoshel introduced infrared blocking nanoparticle coatings capable of reducing solar heat transmission by nearly 60% in architectural glass applications.
  • In 2024 Shanghai Huzheng Industrial developed high-transparency ATO nanoparticle dispersions achieving optical transmission levels above 90% for smart window technologies.
  • In 2023 SkySpring Nanomaterials expanded its conductive nanoparticle product portfolio by adding more than 15 new ATO nanoparticle formulations for electronics and sensor applications.

Report Coverage of Antimony Tin Oxide Nanoparticle Market

The Antimony Tin Oxide Nanoparticle Market Report provides comprehensive insights into nanomaterial production, application industries, and regional market performance. The Antimony Tin Oxide Nanoparticle Market Research Report analyzes more than 25 countries with strong nanotechnology research and manufacturing activity. The report examines key industrial sectors including electronics, solar energy, coatings, sensors, optics, catalysts, and automotive applications. Electronics manufacturing accounts for more than 60% of conductive nanoparticle demand due to increasing production of smartphones, display panels, and semiconductor devices.

The Antimony Tin Oxide Nanoparticle Industry Analysis includes detailed evaluation of nanoparticle synthesis technologies including sol-gel processes, hydrothermal synthesis, and chemical vapor deposition. These manufacturing techniques typically produce nanoparticles ranging from 10 nm to 80 nm in diameter depending on process parameters. The report also analyzes conductive oxide nanoparticle performance metrics including electrical conductivity values between 10⁻³ and 10⁻¹ S/cm and optical transparency levels exceeding 80%. These properties enable applications in transparent conductive coatings and optoelectronic devices.

Antimony Tin Oxide Nanoparticle Market Report Coverage

REPORT COVERAGE DETAILS
Market Size Value In USD 452.49 Million in 2026
Market Size Value By USD 740.21 Million by 2035
Growth Rate CAGR of 5.7% from 2026 - 2035
Forecast Period 2026 - 2035
Base Year 2025
Historical Data Available Yes
Regional Scope Global
Segments Covered
By Type Binary ATO Nanoparticles | Core-Shell ATO Nanoparticles | Doped ATO Nanoparticles
By Application Electronics | Solar Energy | Optics | Sensors | Coatings and Films | Catalysts | Automotive

Frequently Asked Questions

The global Antimony Tin Oxide Nanoparticle Market is expected to reach USD 740.21 Million by 2035.

The Antimony Tin Oxide Nanoparticle Market is expected to exhibit a CAGR of 5.7% by 2035.

Stanford Advanced Materials,SkySpring Nanomaterials,Nanoshel,NanoResearch Elements Inc,Nano Labs,Nanochemzone,Hongwu International Group Ltd,Shanghai Huzheng Industrial Co., Ltd.,Ningbo New Dragon International Trade Co., Ltd.,Aritech Chemazone Private Limited.

In 2026, the Antimony Tin Oxide Nanoparticle Market value stood at USD 452.49 Million.

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