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Kanazawa University research: Atomic force microscopy in 3D

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KANAZAWA, Japan, July 2, 2024 /PRNewswire/ — Researchers at Nano Life Science Institute (WPI-NanoLSI), Kanazawa University report in Small Methods the 3D imaging of a suspended nanostructure. The technique used is an extension of atomic force microscopy and is a promising approach for visualizing various 3D biological systems.

Atomic force microscopy (AFM) was originally invented for visualizing surfaces with nanoscale resolution. Its basic working principle is to move an ultrathin tip over a sample’s surface. During this xy-scanning motion, the tip’s position in the direction perpendicular to the xy-plane follows the sample’s height profile, resulting in a height map of the surface. In recent years, ways to extend the method to three-dimensional (3D) imaging have been explored, with researchers from Nano Life Science Institute (WPI-NanoLSI), Kanazawa University reporting pioneering experiments on living cells. However, for 3D-AFM to evolve into a widely applicable technique for visualizing flexible molecular structures, a thorough understanding of the imaging mechanisms at play is necessary. Now, Takeshi Fukuma from Kanazawa University and colleagues have performed a detailed study of a specially designed flexible sample, providing essential insights into the theoretical basis and the interpretation of 3D-AFM experiments.

Using microfabrication tools, the scientists created a sample consisting of a carbon nanotube fiber resting on platinum pillars that in turn were positioned on a silicon substrate. A carbon nanotube is a structure that one can think of as a rolled-up, one-atom-thick carbon sheet. The freestanding portion of the nanotube was about 2 micrometers long. The whole structure was immersed in water, as many 3D biomolecular systems of interest occur in liquid environments.

Fukuma and colleagues then performed 3D-AFM experiments in two different modes. In static mode, the nanotip is lowered vertically towards the sample. When the tip makes contact with the suspended nanotube fiber, the latter gets pushed aside, and bends while the probe descends further. In dynamic mode, the tip, which is attached to a cantilever, is made to oscillate at a resonance frequency while being lowered. By analyzing how the force experienced by the tip changes as a function of the tip’s depth, the researchers concluded that the friction between the tip and the fiber is much larger in static mode compared to dynamic mode. The latter is therefore the mode of choice, as less friction means that potential damage to the sample is less likely.

The scientists performed computer simulations to model what happens when the tip reaches the carbon nanotube fiber. The simulations confirmed that the suspended nanotube displaces laterally, and that a continuously vibrating tip (as in dynamical mode) results in weaker forces experienced by the sample, hindering strong adhesion of the tip to the fiber.

Fukuma and colleagues then performed experiments with a carbon nanotube fiber suspended above a regular pattern of nano-sized platinum dots deposited on a silicon substrate. The measurements were done in dynamical mode. The reconstructed 3D map of the scanned volume clearly showed the fiber and the dots below it, underlining the capability of 3D-AFM to image vertically overlapping nanostructures.

These findings show that AFM can generally be applied to visualize flexible 3D structures. Quoting the scientists: “… the advancements made in this study may potentially lead to more detailed and accurate AFM analysis of various 3D biological systems such as cells, organelles, chromosomes, and vesicles.”

Background

Atomic force microscopy

The principle behind atomic force microscopy (AFM) is to scan the surface of a sample with a very small tip. During this horizontal (xy) scan, the tip, attached to a small cantilever, follows the sample’s vertical (z) profile, which induces a force on the cantilever that can be measured. The magnitude of the force at the xy position can be related to the z value. The xyz data generated during a scan then result in a height map providing structural information about the investigated sample. The cantilever can be made to oscillate near its resonance frequency, which is referred to as dynamic mode AFM. Not letting the cantilever oscillate is known as static mode AFM. In dynamic mode, when the tip is moved around a surface, the variations in the amplitude (or the frequency) of the cantilever’s oscillation — resulting from the tip’s interaction with the sample’s surface — are recorded, as these provide a measure for the local z value.

Takeshi Fukuma and colleagues have now provided a detailed AFM analysis of a 3D reference sample with nanosized features that could be reconstructed with high precision. The experiments and accompanying simulations confirm that AFM has the potential to become a robust method for the characterization of 3D nanosized objects, including biological systems.

Reference

Mohammad Shahidul Alam, Marcos Penedo, Takashi Sumikama, Keisuke Miyazawa, Kaori Hirahara, and Takeshi Fukuma. Revealing the Mechanism Underlying 3D-AFM Imaging of Suspended Structures by Experiments and Simulations, Small methods, 2400287  (2024). First published : 21 June 2024

DOI: 10.1002/smtd.202400287

URL: https://onlinelibrary.wiley.com/doi/10.1002/smtd.202400287

Figure 1. https://nanolsi.kanazawa-u.ac.jp/wp/wp-content/uploads/Figure-1-1.jpg 
Imaged nanostructure consisting of a suspended carbon nanotube with platinum nanodots beneath.

© 2024 Mohammad Shahidul Alam, et al., Small Methods published by Wiley-VCH GmbH

Contact

Hiroe Yoneda
Senior Specialist in Project Planning and Outreach
NanoLSI Administration Office, Nano Life Science Institute (WPI-NanoLSI)
Kanazawa University
Kakuma-machi, Kanazawa 920-1192, Japan
Email: nanolsi-office@adm.kanazawa-u.ac.jp
Tel: +81 (76) 234-4555

About Nano Life Science Institute (WPI-NanoLSI), Kanazawa University

Understanding nanoscale mechanisms of life phenomena by exploring “uncharted nano-realms”

Cells are the basic units of almost all life forms. We are developing nanoprobe technologies that allow direct imaging, analysis, and manipulation of the behavior and dynamics of important macromolecules in living organisms, such as proteins and nucleic acids, at the surface and interior of cells. We aim at acquiring a fundamental understanding of the various life phenomena at the nanoscale.

https://nanolsi.kanazawa-u.ac.jp/en/

About the World Premier International Research Center Initiative (WPI)

The WPI program was launched in 2007 by Japan’s Ministry of Education, Culture, Sports, Science and Technology (MEXT) to foster globally visible research centers boasting the highest standards and outstanding research environments. Numbering more than a dozen and operating at institutions throughout the country, these centers are given a high degree of autonomy, allowing them to engage in innovative modes of management and research. The program is administered by the Japan Society for the Promotion of Science (JSPS).

See the latest research news from the centers at the WPI News Portal: https://www.eurekalert.org/newsportal/WPI

Main WPI program site: 

www.jsps.go.jp/english/e-toplevel

About Kanazawa University

As the leading comprehensive university on the Sea of Japan coast, Kanazawa University has contributed greatly to higher education and academic research in Japan since it was founded in 1949. The University has three colleges and 17 schools offering courses in subjects that include medicine, computer engineering, and humanities.

The University is located on the coast of the Sea of Japan in Kanazawa – a city rich in history and culture. The city of Kanazawa has a highly respected intellectual profile since the time of the fiefdom (1598-1867). Kanazawa University is divided into two main campuses: Kakuma and Takaramachi for its approximately 10,200 students including 600 from overseas.

http://www.kanazawa-u.ac.jp/e/

View original content:https://www.prnewswire.co.uk/news-releases/kanazawa-university-research-atomic-force-microscopy-in-3d-302187814.html

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Eoptolink Releases OSFP 1.6T DR8 and 2FR4 Series Transceivers for AI/ML Clusters and Cloud Datacenter Networks

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CHENGDU, China, Sept. 20, 2024 /PRNewswire/ — Eoptolink Technology Inc., Ltd. (SZSE: 300502), a leading innovator and provider of advanced optical transceiver solutions, announces the release of its OSFP 1.6T DR8/DR8-2 and 2xFR4 transceivers enabling the next generation high bandwidth networks for AI/ML clusters and cloud datacenters.

Eoptolink 1.6T OSFP transceivers have 8 electrical host interfacing lanes and 8 optical lanes operating at 212.5Gb/s (106GB with PAM4). Equipped with the industry’s latest DSP, these modules support transmission distances of up to 2km without the need to regenerate the FEC. The 1.6T DR8 and DR8-2 modules comes with either one MPO-16 adapter for point-to-point (P2P) connections or two MPO-12 adapters for 2x800G breakout applications. The 1.6T 2xFR4 modules are designed with a dual duplex LC connector running with 2 pairs of fibers only, which could help users to save fiber resources compared to DR8 and DR8-2 versions.

The 1.6T DR8/DR8-2 and 2FR4 Portfolio consists of: – 

EOLO-13T-5H-XMX    OSFP 1.6T DR8, 1×1.6TbE, 500m, MPO-16
EOLO-13T-5H-XDX    OSFP 1.6T DR8, 2x800GbE, 500m, Dual MPO-12
EOLO-13T-02-XMX    OSFP 1.6T DR8-2, 1×1.6TbE, 2km, MPO-16
EOLO-13T-02-XDX     OSFP 1.6T DR8-2, 2x800GbE, 2km, Dual MPO-12
EOLO-16T-02-XXX     OSFP 1.6T 2FR4, 2x800GbE, 2km, Dual Duplex LC

Eoptolink OSFP 1.6T transceivers feature both EML and SiPh-based solutions, and testing has demonstrated excellent performance. “We are very proud of our optical and RF design teams, says Sean Davies, VP Sales, Eoptolink Technology Inc., Ltd. “Our 1.6T OSFP modules do not need an additional FEC on the optical side and this results in lower latency and power consumption of the modules simplifying the complete system and helping our AI and cloud customers in their work.”

About Eoptolink

Eoptolink Technology Inc., Ltd. (SZSE: 300502), a publicly traded company in China, is a leading innovator and provider of advanced optical transceiver solution for data center, enterprise and telecom networks. Eoptolink is dedicated to research, develop, manufacture and markets a diverse portfolio of high-performance optical transceivers for AI, Cloud Data Center, 4G/5G wireless, Transport & Datacom and FTTX applications all over the world.

Contact Us

China(HQ):   

No.510 Wulian Avenue, Chengdu 610200

USA:   

3191 Laurelview Court, Fremont, CA 94538

Thailand:   

390/21 Moo 2, Khao Khan Song, Sriracha, Chonburi 20110

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sales@eoptolink.com 

 

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SOURCE Eoptolink Technology Inc., Ltd.

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Flat Ads Makes Its Mark at DMEXCO 2024: Showcasing Strength in Programmatic Advertising

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COLOGNE, Germany, Sept. 20, 2024 /PRNewswire/ — In September, Flat Ads makes its mark at DMEXCO 2024, the prestigious European event of digital marketing and technology. The highly successful exhibition boasts 650 exhibitors, 850 speakers, and thousands of participants. At the event, Flat Ads showcased the strength of programmatic advertising platform in ad delivery, traffic optimization, and brand safety.

Flat Ads programmatic advertising platform has an exclusive developer traffic of 700 million and an extensive network spanning over 200 countries and regions worldwide. It cooperates with over 200 leading DSP/SSP partners, including FreeWheel, PubMatic and Criteo, leveraging an efficient and complete bidding system, as well as automatic delivery algorithms, to achieve precise marketing and advertising effectiveness maximization.

With its exclusive platform strategy algorithm, Flat Ads programmatic advertising platform can continuously conduct automatic exploration and matching based on the characteristics of DSP and traffic, optimize and adjust the algorithm model in real-time. This not only ensures the sustainability of DSP budgets, but also maximizes traffic utilization and enhances monetization revenue of advertisements.

Moreover, brand protection is among the top priorities of Flat Ads. In addition to accessing to authority agency Pixalate to test the effectiveness of ads, it has also accessed HUMAN, the global cybersecurity authority to safeguard its clients by preventing bot attacks, digital fraud and abuse, ensuring a stable, reliable, and secure programmatic advertising transaction platform.

By participating in DMEXCO 2024, Flat Ads showcased its outstanding strength and fruitful achievements in the programmatic advertising field, attracting the attention of numerous advertisers and developers for cooperation. Flat Ads boasts not only robust technical capabilities and innovative prowess, but also an active and open attitude towards emerging technologies, embracing and exploring them. It remains committed to providing more professional and efficient global marketing services to advertisers and developers worldwide, helping clients stand out in the fiercely competitive market and achieve business growth.

As a globally leading mobile advertising marketing platform, Flat Ads currently operates offices in Singapore, Indonesia, Hong Kong, and Guangzhou, serving over 1000 clients with global marketing solutions. If you’re interested in Flat Ads’ programmatic advertising services, please visit www.flat-ads.com.

View original content:https://www.prnewswire.co.uk/news-releases/flat-ads-makes-its-mark-at-dmexco-2024-showcasing-strength-in-programmatic-advertising-302253872.html

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Tulufan, Xinjiang: For the first time, a new energy plant and station has achieved “all-green electricity” operation

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TULUFAN, China, Sept. 20, 2024 /PRNewswire/ — On September 19, employees of State Grid Tulufan Electric Power Supply Company came to State Power Investment Zhongli Tenghui Qiquanhu Photovoltaic Power Station to provide comprehensive technical support and guidance for new energy enterprises.

Seven wind power and photovoltaic power generation enterprises, including Xinjiang Jize Power Generation Company in Tulufan, have obtained 6.035 million KWH of grid electricity by purchasing 6,035 “green certificates” to achieve “green electricity – green electricity” and achieve green energy use in the whole link of new energy power generation.

The green power certificate, referred to as “green certificate”, is the only certificate that identifies the production and consumption of renewable energy power. Promoting the all-green operation of new energy power generation is an important measure to promote the green consumption of renewable energy.

“Before, we were just ‘producers’ of green electricity. Now the buyers of green certificates have become green electricity consumers, and the production process is fully green.” Qiquan Lake photovoltaic power station inspection officer Forzati Dilishati said.

Since the launch of the green electricity and green certificate market, State Grid Tulufan Electric Power Supply Company has actively promoted green electricity trading, promoted the supply of green electricity and green certificates in multiple scenarios, promoted the rapid promotion and popularization of related services in Tulufan, and helped build a new power system.

In the first eight months of this year, the cumulative volume of green electricity transactions in Xinjiang reached 1.174 billion KWH, 93.83 times that of the whole year of 2022.

 

View original content:https://www.prnewswire.com/apac/news-releases/tulufan-xinjiang-for-the-first-time-a-new-energy-plant-and-station-has-achieved-all-green-electricity-operation-302253902.html

SOURCE State Grid Tulufan Electric Power Supply Company

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