There’s a well-known scene on the series Ted Lasso where the main character discusses the merits of being curious, a quote he misattributes to Walt Whitman. Scientific research is conducted by curious individuals. Like journalists, who look for the answers to the 5 Ws—who, what, where, when, and why—scientists pose questions like: What is this made of? Where did it come from? How does this work? Why does it look like that?
The narwhal is a fascinating creature. An aquatic unicorn of sorts that lives in cold northern waters. Their main distinguishing feature is the “tusk” that is an elongated upper-left canine tooth piercing the lip. It grows up to ten feet long and is packed with millions of sensitive nerve endings. The presence of such a feature inspires questions. Why do narwhals need this tusk? What do they do with it?
Biologists believe the tusks act as a sensory organ and not, as might be assumed, an offensive or defensive weapon. They can bend up to a foot in any direction without breaking.
But what about the fact that it is the only tusk in nature that is straight, unlike those attached to elephants, hogs, walruses, and hippos. Even rhinoceroses’ horns—which aren’t tusks—are curved. A scientist investigating molecular chirality was intrigued when he learned that the spirals on the surfaces of the tusks all twist in the same direction: a counterclockwise or left-handed spiral. A decades-old hypothesis suggested that the spiral growth compensates for uneven growth around the base of the tooth, preventing it from curving.
New research published in Nature Communications dives deeper into the material itself. An international team examined narwhal tusks across multiple length scales using imaging and other materials-characterization techniques. They found that the visible spiral isn't just a surface feature. The tusk is built from mineralized collagen organized into microscopic helical structures. Some twist in opposing directions: a left-handed spiral on the outer layer of cementum, and a right-handed one in the inner layer of dentine. The researchers propose that these counteracting twists balance mechanical forces as the tusk grows, allowing this long structure with a pronounced spiral architecture to remain extraordinarily straight.
Curiosity identifies the mystery; analytical tools allow us to investigate it.
Looking for a simpler path to high-voltage X-ray CT with true submicron resolution?
Join us on LinkedIn Live as we introduce a new approach to accessible 160 kV true submicron X-ray CT. Traditionally, achieving high-voltage X-ray CT with true submicron resolution has required a significant investment in specialized systems and configurations. During this launch event, we'll show how it's possible to combine 160 kV X-ray capability with true 250 nm spatial resolution and a 62 nm minimum voxel size while avoiding the cost and operational complexity that many laboratories do not need.
Attendees will learn how we simplify a 160 kV true submicron CT scanner, explore the key design choices behind the system, and see high-resolution CT data from representative applications. The session will conclude with a live Q&A, giving participants the opportunity to ask questions directly to our experts.
As AI drives the demand for advanced logic, HBM, and advanced packaging, semiconductor manufacturing is reaching new levels of complexity. Accurate, production-ready metrology is more critical than ever.
Join Rigaku at Booth N0592 in SEMICON Taiwan to discover how our X-ray metrology and inspection solutions help semiconductor manufacturers, foundries, OSATs, and materials suppliers accelerate innovation, improve yield, and gain deeper process insight across the entire semiconductor value chain.
Rigaku’s XRD Calculation Tools provide quick, intuitive access to key parameters used in X-ray diffraction analysis.They allow users to compute transmission, diffraction angle, d-spacing resolution, beam footprint, peak shift, peak-to-background ratio, and statistical uncertainties—all essential for optimizing measurement conditions and interpreting data. These tools support efficient experimental design and deeper insight into XRD measurements across applications such as crystal structure analysis, thin-film characterization, and materials research.
PhotonJetULTRA combines exceptional source brightness, dual wavelength flexibility and a sample-optimizable beam to make demanding diffraction experiments easier to set up, easier to run and easier to own. From routine measurements to challenging materials, it gives researchers the freedom to adapt the source to the experiment rather than forcing every experiment into the same source conditions.
Rigaku's newly launched PhotonJetULTRA X-ray source delivers ultra-bright performance, dual-wavelength flexibility, and adaptable beam conditions to support demanding crystallography experiments with greater efficiency and ease of use.
Jul. 31, 2026: Researchers studying Hiroshima fallout identifieda previously unknown multicomponent alloy in tiny metallic droplets from Hiroshima Bay. The material contains iron, chromium, nickel, manganese, molybdenum, silicon, and aluminum, and it formed under the extreme temperatures of the 1945 blast. The discovery shows how extreme events can create unusual structures that do not appear in ordinary processing.
Aug. 18, 2026: Researchers used AI inverse design to createphotonic chip components up to 500 times smaller than conventional versions. The parts include wavelength splitters, spatial mode sorters, and mirrors that manipulate light efficiently while taking up very little space on chips. The work could lead to denser, lower-heat photonic hardware for AI systems, quantum computing, and communications.
Aug. 20, 2026: Scientists reportedan aqueous zinc-iodine battery that can reportedly cycle more than 60,000 times and recharge in about three minutes. The design uses a molecular cage to stabilize iodine without blocking the chemistry that makes the battery work. As they're aqueous (water-based), the batteries don't come with the same risk of explosion and fire as standard lithium-ion batteries do. They could also be easier to resource and manufacture, reducing the pressure on lithium-ion materials.
Aug. 21, 2026: Researchers reported a methodfor turning desert sand into eco-friendly bricks that cuts cement use by nearly half. The approach is aimed at solving a real materials problem in the UAE, where local sand is abundant but traditionally poor for concrete because the grains do not interlock well. This method could lead to a lower-carbon route for building in sand-rich regions.
Aug. 21, 2026: A high school student developeda 3D-printable thermo-responsive polymer gel that solidifies at body temperatureand can be shaped into complex forms with relatively inexpensive equipment. He tested it for controlled-release “pouches” that could eventually support drug delivery and tissue engineering, while also exploring uses in heat management and electronics. The project is still proof-of-concept, but it shows how accessible materials science can open biomedical and engineering applications for future medicine.
Featured Application Notes
Quantitative Analysis of Blast Furnace Slag by Fusion Method
Blast furnace slag is formed when iron ore or iron pellet, coke and flux are melted in a blast furnace of the iron foundry. The rapid chemical analysis of a blast furnace slag is an important task to control the blast furnace. X-ray fluorescence spectrometers are the most common analysis tools to analyze powder samples in iron and steel making process.
Wood treatments help protect lumber from fungi, insects, UV damage, and general weathering. Copper- and copper oxide-based wood preservatives are widely used in residential and commercial construction projects, including building foundations, fencing, decking, and playground structures. During the treatment process, copper concentration in the treatment solution must be carefully monitored to maintain consistent product quality while minimizing preservative consumption, reducing operating costs, and preventing product rejection.
This application note demonstrates the measurement of copper (Cu) in treated wood and wood treatment solutions using the Rigaku NEX QC II energy dispersive X-ray fluorescence (EDXRF) analyzer.
Introduction of the Pre-calibration Package GEO-TRACE-PAK: An Analytical Package for Trace Elements Including Rare Earth Elements in Rocks
By Yasujiro Yamada
X-ray fluorescence (XRF) spectrometry enables the rapid, nondestructive analysis of a wide range of different sample types. However, as it is a relative analytical method, quantitative analysis requires preparing standard samples, establishing calibration curves, and optimizing correction conditions, which results in longer analysis times and higher costs. This report describes the features and effectiveness of “GEO-TRACE-PAK,” a pre-calibration analytical package specifically designed for analyzing trace elements, including rare earth elements, in rocks.
The Opioid Matrix is a podcast for anyone looking for the latest information in the illegal drug supply chain—beginning to end. Each episode will feature a discussion with industry experts about the current opioid crisis, including drug trafficking, drug manufacturing, drug identification, drug addiction, as well as the role of government, law enforcement, new health and social programs, and more.