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Transmission Electron Microscope Market to grow by USD 528.8 Million (2024-2028), driven by focus on nanotechnology, with a report on how AI is reshaping the landscape – Technavio

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NEW YORK, Jan. 16, 2025 /PRNewswire/ — Report with market evolution powered by AI – The global transmission electron microscope market  size is estimated to grow by USD 528.8 million from 2024-2028, according to Technavio. The market is estimated to grow at a CAGR of over 11.76%  during the forecast period. Increasing focus on nanotechnology is driving market growth, with a trend towards development of new forms of transmission electron microscopes. However, high cost and heavy excise duty of transmission electron microscopes  poses a challenge. Key market players include Advantest Corp., Agilent Technologies Inc., AMETEK Inc., Angstrom Advanced Inc., Bruker Corp., Carl Zeiss Stiftung, Danaher Corp., DELONG INSTRUMENTS AS, Hirox Co. Ltd., Hitachi Ltd., IXRF Inc., JEOL Ltd, NanoScience Instruments Inc., Nikon Corp., Nion, Olympus Corp., Oxford Instruments plc, Roper Technologies Inc., Thermo Fisher Scientific Inc., and VIDEOTON HOLDING ZRt.

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Forecast period

2024-2028

Base Year

2023

Historic Data

2017 – 2021

Segment Covered

Application (Life science, Material science, Nanotechnology, Semiconductor, and Others), End-user (Industries, Academic institutes, and Others), and Geography (APAC, North America, Europe, South America, and Middle East and Africa)

Region Covered

APAC, North America, Europe, South America, and Middle East and Africa

Key companies profiled

Advantest Corp., Agilent Technologies Inc., AMETEK Inc., Angstrom Advanced Inc., Bruker Corp., Carl Zeiss Stiftung, Danaher Corp., DELONG INSTRUMENTS AS, Hirox Co. Ltd., Hitachi Ltd., IXRF Inc., JEOL Ltd, NanoScience Instruments Inc., Nikon Corp., Nion, Olympus Corp., Oxford Instruments plc, Roper Technologies Inc., Thermo Fisher Scientific Inc., and VIDEOTON HOLDING ZRt

Key Market Trends Fueling Growth

The transmission electron microscope market is experiencing significant growth due to the development of new types of transmission electron microscopes. These advanced models include reflection electron microscopes (REMs), scanning-transmission electron microscopes (STEMs), low-voltage electron microscopes (LVEMs), and cryo-EM. Reflection electron microscopes (REMs) differ from traditional transmission electron microscopes by collecting electrons that are elastically scattered from the object, rather than those that pass through it. REMs are particularly useful when surface information of the specimen is required. Scanning-transmission electron microscopes (STEMs) are increasingly adopted in research laboratories due to their ability to produce images or results directly, without the need for interpretation. STEMs come in two types: conventional transmission electron microscopes, which require additional detectors, scanning coils, and circuitry, and dedicated STEMs, which have all the circuitry embedded. Low-voltage electron microscopes (LVEMs) combine the features of transmission electron microscopes, scanning electron microscopes, and STEMs. Operating at a low voltage, LVEMs provide high contrast images, which is essential for studying biological specimens. LVEMs are available in benchtop mode and are one of the smallest multimode desktop electron microscopes. Cryo-EM uses frozen samples, gentle electron beams, and sophisticated image processing to study biomolecules without the need for crystals. Cryo-EM allows scientists to observe biomolecules as they perform their functions, making it an invaluable tool in the field of biology. Liquid-phase TEM (LP-TEM) ensures in-situ observations of materials in liquids at the highest spatial and temporal resolution in controlled environments. LP-TEM is crucial for studying fluid properties and temperature, but caution must be taken for changes induced by electron beams in pH, nucleation rate, and radiolysis. Overall, the advancements in transmission electron microscopes are driving the growth of the global transmission electron microscope market. These new forms of microscopes offer unique benefits, making them indispensable tools in various industries, including materials science, biology, and electronics. 

The Transmission Electron Microscope (TEM) market is experiencing significant growth due to its application in various industries. In life sciences, TEMs are crucial for cancer research and virology, providing 2D images of specimens at the nanoscale. In materials sciences, TEMs help analyze semiconductors and wafers, enabling the study of their 3D structure and properties. TEMs are also essential in pollution research, nanotechnology, paleontology, and palynology. Industries like automotive, aerospace, electronics, oil & gas, environmental, water treatment, hospitals, diagnostic centers, blood banks, and forensic labs rely on TEMs for their research and development. TEMs offer high throughput methods, super resolution, digitization, live-cell imaging, and expansion and multi-view microscopes. Sample preparation techniques have also advanced, making TEMs more accessible. Neutron spectroscopy, X-ray diffraction, and electron microscopy imaging are complementary techniques that enhance TEM’s capabilities. TEMs operate at the de Broglie wavelength, enabling the study of nanometers-scale objects. Overall, the TEM market is expanding, driven by its applications in various industries and advancements in technology. 

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Market Challenges

The Transmission Electron Microscope (TEM) market faces significant challenges due to the high initial investment cost and the dependence on government and corporate funding for research institutes. This funding can be unpredictable, leading to market volatility. Additionally, high import duties and taxes, such as customs duties, imposed by various governments can increase the final product cost. Some countries, like the US, China, Canada, India, and Brazil, levy indirect taxes at both the national and state levels, with tax rates ranging from 11% to 17%. These taxes and excise duties contribute to the overall increase in product costs, potentially hindering the growth of the global TEM market during the forecast period.The Transmission Electron Microscope (TEM) market faces several challenges in various industries. In research centers, the use of licensed closed-source software limits the flexibility and collaboration among researchers. In electronics and medicine, the need for advanced microscopes for nanotechnology, surface physics, and surface analyses is growing, requiring significant investment. For solid specimens, TEMs offer unparalleled magnification, making them essential for gemology, medical sciences, forensic sciences, and more. However, the complex electron gun, condenser system, objective lens, movable specimen stage, image-recording system, and vacuum system make TEM instruments expensive and challenging to operate. The market for TEMs is expanding in nanomaterials, energy-related materials, polymers, glassy substances, biomolecular mechanisms, viruses, macromolecular complexes, and cellular structures. Industries, including catalysis research, environmental particles, and the nanoworld, rely on TEMs for scientific research and technological innovation. The electron source and electron optics system in a vacuum environment enable the study of ultrafast processes, making TEMs indispensable tools. Environmental TEMs and beam chopper technology, such as UTEM, offer solutions for specific applications. Overall, the TEM market’s growth is driven by the need for deeper understanding and discovery in various fields.

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Segment Overview 

This transmission electron microscope market report extensively covers market segmentation by

Application 1.1 Life science1.2 Material science1.3 Nanotechnology1.4 Semiconductor1.5 OthersEnd-user 2.1 Industries2.2 Academic institutes2.3 OthersGeography 3.1 APAC3.2 North America3.3 Europe3.4 South America3.5 Middle East and AfricaCountry
China, US, Japan, South Korea, and Canada

1.1 Life science-  Transmission Electron Microscopes (TEMs) play a crucial role in the field of life sciences, particularly in microbiology, by enabling researchers to examine microorganisms and their structures at the atomic level. These advanced instruments allow scholars to study intricate details of cellular environments, contributing significantly to the understanding of cell behavior, structure, and growth. With the potential to develop new drugs and medicines, academic institutions and pharmaceutical firms invest heavily in TEM technology. For instance, the Pennsylvania State University’s acquisition of FEI Company’s Titan/Krios TEM, which operates at extremely low temperatures, enhances their research capabilities and opens new avenues for exploration. TEMs enable the creation of 3D images of biological molecules such as DNA, proteins, and viruses, including the SARS-CoV-2 virus causing COVID-19. This technology’s ability to produce high-resolution images of these structures aids in the development of new vaccines and treatments. The ongoing research on single-dose COVID-19 vaccines is expected to fuel the demand for TEMs in the global market during the forecast period.

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Research Analysis

The Transmission Electron Microscope (TEM) market encompasses a wide range of industries and applications, driven by the need for high-resolution imaging and analysis of nanoscale objects. TEM utilizes the principle of de Broglie wavelength, allowing electrons to pass through thin samples and create detailed images. Applications span various fields such as cancer research, virology, materials sciences, nanotechnology, paleontology, and palynology. Industries like life sciences, automotive, aerospace, electronics, oil & gas, environmental, water treatment, and research institutes, hospitals, diagnostic centers, blood banks, and forensic labs all benefit from TEM technology. Semiconductors and X-ray diffraction are also significant applications. TEMs, including Scanning Transmission Electron Microscopes (STEMs), are essential tools for studying nanometers-scale structures, providing valuable insights into their properties and behavior.

Market Research Overview

Transmission Electron Microscopes (TEMs) use the principle of de Broglie wavelength to generate high-resolution 2D images of specimens at the nanoscale. TEMs differ from light microscopes as they employ an electron gun and condenser system instead of light to illuminate the specimen. TEMs have significant applications in various fields such as cancer research, virology, materials sciences, pollution analysis, nanotechnology, paleontology, and palynology. They provide detailed information on the 3D structure of nanoscale objects, semiconductors, wafers, and other materials. TEMs are used extensively in the life sciences, semiconductor industry, automotive, aerospace, electronics, oil & gas, environmental, water treatment, hospitals, diagnostic centers, blood banks, forensic labs, and other industries. TEMs offer advanced features like live-cell imaging, super resolution, high throughput methods, expansion microscopes, multi-view microscopes, and integrated microscopy workflows. Sample preparation is crucial for obtaining high-quality images, and TEMs require specialized equipment and expertise. TEMs use closed-source and proprietary software, which can be expensive, while open-source software like ImageJ/Fiji, Neuronstudio, and L-measure offer cost-effective alternatives for small-scale end users. TEMs require skilled operators, including physicists, laboratory technicians, and other experts. The electron gun and objective lens focus the electron beam on the specimen, while the condenser system controls the illumination. The electron beam interacts with the specimen, producing various signals that are used to form the image. Neutron spectroscopy, X-ray diffraction, and electron microscopy imaging are complementary techniques used in conjunction with TEMs for comprehensive material analysis.

Table of Contents:

1 Executive Summary
2 Market Landscape
3 Market Sizing
4 Historic Market Size
5 Five Forces Analysis
6 Market Segmentation

ApplicationLife ScienceMaterial ScienceNanotechnologySemiconductorOthersEnd-userIndustriesAcademic InstitutesOthersGeographyAPACNorth AmericaEuropeSouth AmericaMiddle East And Africa

7 Customer Landscape
8 Geographic Landscape
9 Drivers, Challenges, and Trends
10 Company Landscape
11 Company Analysis
12 Appendix

About Technavio

Technavio is a leading global technology research and advisory company. Their research and analysis focuses on emerging market trends and provides actionable insights to help businesses identify market opportunities and develop effective strategies to optimize their market positions.

With over 500 specialized analysts, Technavio’s report library consists of more than 17,000 reports and counting, covering 800 technologies, spanning across 50 countries. Their client base consists of enterprises of all sizes, including more than 100 Fortune 500 companies. This growing client base relies on Technavio’s comprehensive coverage, extensive research, and actionable market insights to identify opportunities in existing and potential markets and assess their competitive positions within changing market scenarios.

Contacts

Technavio Research
Jesse Maida
Media & Marketing Executive
US: +1 844 364 1100
UK: +44 203 893 3200
Email: media@technavio.com
Website: www.technavio.com/

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As ADA Anniversary Approaches, University of Phoenix Survey Highlights AI’s Potential to Advance Accessibility in Work and Learning

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Survey conducted by The Harris Poll on behalf of University of Phoenix finds among those already using AI in the workplace, 60% say AI has improved their knowledge of and ability to use accessibility standards and guidelines.

PHOENIX, July 24, 2026 /PRNewswire/ — As artificial intelligence becomes part of how people work, learn and solve problems, a new University of Phoenix survey conducted by The Harris Poll finds that recent working learners see meaningful opportunities for AI to support accessibility. The survey was designed to understand the impact of AI in the workplace and learning environments on accessibility, defined as ensuring digital content, tools and resources, including AI tools and output, are usable by people with different abilities through inclusive design, use of assistive technology or conformance with accessibility standards, such as the Web Content Accessibility Guidelines (WCAG). The findings are being released ahead of the 36th anniversary of the Americans with Disabilities Act (ADA) on July 26.

The survey, conducted among 1,019 U.S. employed adults who completed a professionally presented training or school course in the past 12 months (“recent working learners”), found that, among workers already using AI in the workplace, 3 in 5 (60%) say AI has improved their knowledge of and ability to use accessibility standards and guidelines, including nearly 1 in 5 (19%) who report significant improvement. 

While the findings point to optimism about AI’s accessibility potential, they also reveal an opportunity for clearer organizational guidance: 45% of respondents say accessibility is absent from, unclear in, or they are uncertain whether it is covered by their workplace AI policies.

“The reality is that accessibility benefits everyone,” shares Kelly Hermann, Vice President of Accessibility and Student Affairs at University of Phoenix. “If accessibility is built in from the beginning, organizations are more likely to create AI-enabled environments that are universally usable. Clearer content, better summaries, accurate captions, and multiple formats can help workers and learners with disabilities, but they also help busy adults, multilingual learners, mobile users, and anyone trying to absorb information quickly.”

Key findings from the survey include:

Workers see AI’s accessibility potential: 89% of recent working learners identify workflows that could benefit from AI and accessibility tools, especially creating accessible documents, presentations, websites or learning materials (38%), presenting information in different formats such as plain language, audio, summaries or translations (33%), and training employees or learners on accessibility practices (30%).AI may help build accessibility awareness: Among those already using AI in the workplace, 60% say AI has improved their knowledge of and ability to use accessibility standards and guidelines.Accessibility is not always clear in workplace AI policies: 45% of recent working learners say accessibility is absent from, unclear in, or they are uncertain whether it is covered by their workplace AI policies.AI tools may not yet fully support different access needs: Among those who use workplace AI tools, only about a quarter of survey respondents (27%) say AI tools available through their workplace or professional learning environment support people with disabilities very well.Human oversight remains important: 36% of recent working learners say human review for important decisions or high-impact work should be part of responsible AI use at work or school.Workers also recognize how AI and accessibility can have an impact on their own career journey: 90% of recent working learners identify AI and accessibility skills that would be valuable in their current or desired career field, including 45% who see value in understanding when AI-generated content needs human review.

Why accessibility is essential to responsible AI adoption

As AI tools are used to draft documents, summarize information, generate captions and transcripts, create image descriptions, support learning and assist with workplace tasks, accessibility becomes central to responsible use. Poorly implemented AI can also create or amplify barriers, including inaccessible content, inaccurate summaries, biased outputs and tools that do not work effectively with assistive technologies.

“Responsible AI is not only about productivity,” Hermann said. “It is about whether the technology works for the people who need to use it. AI can help create more accessible materials and more flexible ways to engage with information, but it still requires clear policies, practical training and human judgment to make sure the outputs are accurate, applicable and usable.”

What the findings mean for employers and educators

The survey suggests that organizations have an opportunity to align AI adoption with supportive design, accessibility practices and workforce training. Employers and educators can take immediate steps by:

Naming accessibility directly in AI policies and guidance.Choosing AI tools with accessibility and assistive technology compatibility in mind.Training workers and learners to create, check and improve accessible AI-generated content.Making support pathways clear for people who experience barriers using AI tools.Keeping human review in place for important decisions, high-impact work and accessibility-sensitive outputs.

The survey also found workers want practical AI training. The most helpful resources identified by recent working learners include real-world examples from their field or industry (36%), hands-on practice using realistic workplace scenarios (34%) and step-by-step demonstrations of common tasks (33%).

Accessibility insights from University of Phoenix

Hermann shared the survey findings ahead of the ADA anniversary in recent media interviews. Hermann oversees the University’s accessibility initiative, including evaluation and remediation of curricular resources, the Center for Access, Resources, Engagement and Support Services (CARES), and the Office of Collaborative Learning and Educational Engagement. Her work focuses on fostering accessible and welcoming educational environments for students, faculty and staff.

Hermann’s office at University of Phoenix also convenes accessibility conversations through initiatives such as Access Amplified™, a free, annual virtual event focused on advancing digital accessibility in web development. The event brings together engineers, developers, designers, content authors and digital strategists for practical strategies and human-centered conversations that address the gap between coding practices and how users with assistive technology experience the web.

About the survey

The survey was conducted online within the United States by The Harris Poll on behalf of University of Phoenix from June 22–29, 2026, among 1,019 employed adults ages 18 and older who have taken a professionally presented training or a school course in the past 12 months, referred to as “recent working learners.” Data were weighted where necessary by age, gender, race/ethnicity, region, education, employment, marital status, household size, household income and smoking status to bring them in line with their actual proportions in the population.

Respondents for this survey were selected from among those who have agreed to participate in surveys. The sampling precision of Harris online polls is measured by using a Bayesian credible interval. For this study, the sample data is accurate to within +/- 3.8 percentage points using a 95% confidence level. This credible interval will be wider among subsets of the surveyed population of interest.

Review the complete survey at phoenix.edu/aiaccessibility.

About University of Phoenix

University of Phoenix is Built for Real Life. 50 Years Strong. The University innovates to help working adults enhance their careers and develop skills in a rapidly changing world through flexible online learning, relevant courses, academic AI pillars, and skills-mapped curriculum for associate, bachelor’s and master’s degree programs. Active students and alumni have access to Career Services for Life® resources including career guidance and tools. For more information, visit phoenix.edu. 

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Mastech Digital to Announce Second Quarter 2026 Financial Results; Participate in Upcoming Investor Conference

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PITTSBURGH, July 24, 2026 /PRNewswire/ — Mastech Digital, Inc. (NYSE American: MHH) (“Mastech Digital”), a leading provider of Digital Transformation IT Services, today announced the date for the release of its financial results for the second quarter ended June 30, 2026, and its participation in an upcoming investor conference.

Second Quarter 2026 Earnings:

Mastech Digital will report its financial results for the second quarter 2026 before the market opens on Thursday, August 6, 2026. Management will host a live conference call and webcast at 9:00 a.m. Eastern Time on that day to discuss the Company’s financial performance and operating results.  The conference call will be hosted by Nirav Patel, President and CEO, and Kannan Sugantharaman, Chief Financial and Operations Officer.

Those wishing to participate via webcast should access the call through Mastech Digital’s Investor Relations website at https://investors.mastechdigital.com. Those wishing to participate via telephone may dial in at 1-800-715-9871 (USA) or 1-646-307-1963 (International) with the passcode 7506988. The replay will be available via webcast through Mastech Digital’s Investor Relations website.

Upcoming Investor Conference:

Mr. Sugantharaman will host a fireside chat at the Sidoti Micro-Cap Investor Conference on Wednesday, August 19, 2026, at 9:15 a.m. Eastern Time.

Mastech Digital management is scheduled to host virtual one-on-one and small group meetings with investors during the conference on August 19-20, 2026. Investors interested in arranging a meeting should contact their Sidoti representative or reach out to the Mastech Digital investor relations team at investors@mastechdigital.com.

About Mastech Digital, Inc.

Mastech Digital (NYSE American: MHH) is a leading provider of Digital Transformation IT Services. The Company offers Data Management, Analytics & AI Solutions, and IT Staffing Services with a digital-first approach. A minority-owned enterprise, Mastech Digital is headquartered in Pittsburgh, PA, with offices across the U.S., Canada, Europe, and India. Visit us at www.mastechdigital.com.

Investor Relations Contact:
investors@mastechdigital.com 

 

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SOLAI Limited Announces Extraordinary General Meeting

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AKRON, Ohio, July 24, 2026 /PRNewswire/ — SOLAI Limited (NYSE: SLAI) (“SOLAI” or the “Company”) (previously known as “BIT Mining Limited”), a technology-driven personal AI and digital infrastructure provider, today announced that it will hold its extraordinary general meeting of shareholders at 428 South Seiberling Street, Akron, Ohio, US on August 14, 2026 at 10:00 a.m., New York time.

Holders of record of ordinary shares and preference shares of the Company at the close of business on July 20, 2026, New York time (the “Record Date”) are entitled to receive notice of, and to attend and vote at, the extraordinary general meeting or any adjournment thereof. Holders of the Company’s American Depositary Shares (“ADSs”) who wish to exercise their voting rights for the underlying ordinary shares must act through the depositary of the Company’s ADS program, Deutsche Bank Trust Company Americas.

The notice of the extraordinary general meeting, which sets forth the resolutions to be submitted to shareholder approval at the extraordinary general meeting is available on the Investor Relations section of the Company’s website at https://ir.solai.com

About SOLAI Limited

SOLAI Limited (previously known as “BIT Mining Limited”) (NYSE: SLAI) (previously traded under “BTCM”) is a technology-driven personal AI and digital infrastructure provider. Building upon its historical legacy in digital asset mining and blockchain network operations, the Company is leveraging extensive experience in large-scale hardware deployment, data center operations, and high-performance computing to build the foundational infrastructure for personal AI computing and digital asset ecosystems globally.

For more information:

SOLAI Limited
ir@solai.com
ir.solai.com
www.solai.com 

Christensen Advisory
Jason Ng
Tel: +852-2117-0861
Email: solai@christensencomms.com 

 

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