Inspired by Steel, Nanomanufacturing Gets Wear-Resistant Carbide Tip

- 10,000 times more wear resistant than previous state-of-the-art tips - Scientists used an annealing process similar to that of tempered steel to harden the materials into carbide, while maintaining the sharpness of the tip - Represents an important step towards nanomanufacturing for applications including bio sensors for healthcare and the environment

ZURICH, Feb. 8, 2012 -- Scientists at the University of Pennsylvania, the University of Wisconsin-Madison and IBM Research - Zurich (NYSE: IBM) have fabricated an ultrasharp silicon carbide tip possessing such high strength that it is thousands of times more wear-resistant at the nanoscale than previous designs. The new tip, which is 100,000 times smaller than the tip of a pencil, represents an important step towards nanomanufacturing for applications, including bio sensors for healthcare and the environment.


The search for hard materials to extend the working life of sharp tools is an age-old problem that started with the first chisels used in stone carving. Eventually iron was discovered and steel tools revolutionized the era. Today, the challenge remains the same, but on a much smaller scale-the need for a nano-sized tip that is both ultrasharp, yet still physically robust, particularly under extreme temperatures and harsh chemical environments.

"The dream tip material for thermomechanical nanofabrication should have a high hardness, temperature stability, chemical inertness, and high thermal conductivity," said Dr. Mark Lantz, manager in storage research at IBM Research - Zurich. "With this novel tip we continue to deliver on IBM's vision of a smarter, instrumented world with microscopic sensors monitoring everything from water pollution to patient care."

Extending their previous successful collaboration, scientists at the University of Pennsylvania, the University of Wisconsin-Madison and IBM Research - Zurich have developed a new, resistant nano-sized tip that wears away at the rate of less than one atom per millimeter of sliding on a substrate of silicon dioxide. This is much lower than the wear rate of conventional silicon tips and its hardness is 100 times greater than that of the previously state-of-the-art silicon oxide-doped diamond-like carbon tips developed by the same collaboration last year.

"Compared to our previous work in silicon, the new carbide tip can slide on a silicon dioxide surface about 10,000 times farther before the same wear volume is reached and 300 times farther than our previous diamond-like carbon tip. This is a significant achievement that will make nanomanufacturing both practical and affordable," said Prof. Robert W. Carpick, University of Pennsylvania.

To create the new tip, scientists developed a process whereby the surfaces of nanoscale silicon tips are exposed to carbon ions and then annealed so that a strong silicon carbide layer is formed, but the nanoscale sharpness of the original silicon tip is maintained. Although silicon carbide has long been known as an ideal candidate material for such tips, the unique carbon implantation and annealing process made it possible to harden the surface while maintaining the original shape and ensuring strong adhesion between the hardened surface of the tip and the underlying material-similar to how steel is tempered to make it harder.

Consisting primarily of carbon and silicon, the tip is sharpened to a nano-sized apex and integrated on the end of a silicon microcantilever for use in atomic force microscopy. The importance of the development lies not only in its ability to maintain the sharpness of the tip and its resistance to wear, but also in its endurance when sliding against a hard substrate such as silicon dioxide. Because silicon-used in almost all integrated circuit devices-oxidizes in the atmosphere, forming a thin layer of its oxide, this system is among the most relevant for emerging applications in nanolithography and nanomanufacturing applications.

More specifically, scientists hope that the new tip can be used to fabricate bio sensors, for example for managing glucose levels in diabetic patients or monitoring pollution levels in water.

Probe-based technologies are expected to play a predominant role in many such technologies. However, poor wear performance of the tip materials used so far, especially when slid against silicon oxide, have previously limited their usefulness for experimental applications.

The next step for scientists is to begin testing the new tip for use in applications, starting with nanomanufacturing.

The study, published today in the peer-reviewed journal Advanced Functional Materials, 10.1002/adfm.201102383, was conducted collaboratively by Dr. Mark A. Lantz and Dr. Bernd Gotsmann, IBM Research - Zurich; Tevis D. B. Jacobs, Dr. Papot Jaroenapibal, Prof. Robert W. Carpick, University of Pennsylvania; and Sean D. O'Connor and Prof. Kumar Sridharan, University of Wisconsin.

This research was partially funded by the Nano/Bio Interface Center of the University of Pennsylvania through the National Science Foundation under grant CMMI-0826076.

Featured Product

Model TR1 Tru-Trac

Model TR1 Tru-Trac

The Model TR1 Tru-Trac® linear measurement solution is a versatile option for tracking velocity, position, or distance over a wide variety of surfaces. An integrated encoder, measuring wheel, and spring-loaded torsion arm in one, compact unit, the Model TR1 is easy to install. The spring-loaded torsion arm offers adjustable torsion load, allowing the Model TR1 to be mounted in almost any orientation - even upside-down. The threaded shaft on the pivot axis is field reversible, providing mounting access from either side. With operating speeds up to 3000 feet per minute, a wide variety of configuration options - including multiple wheel material options - and a housing made from a durable, conductive composite material that minimizes static buildup, the Model TR1 Tru-Trac® is the ideal solution for countless applications.