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New molecule could pave the way for more efficient computers

The research team used a scanning tunneling microscope to demonstrate the capabilities of a new type of molecule that can carry electrical current over record-breaking distances without losing efficiency. (Getty Images photo)

A team of scientists has developed the 糖心传媒渨orld糖心传媒檚 most electrically conductive organic molecule,糖心传媒� which could revolutionize electronic materials for computer chips.

A research team that includes a scientist from the says it has uncovered what it believes is 糖心传媒渢he world糖心传媒檚 most electrically conductive organic molecule.糖心传媒� The discovery opens new possibilities for building smaller and more powerful and energy efficient computing devices.

In a published in the Journal of the American Chemical Society, the researchers, including , a professor of and of at Rochester, unveiled a new type of molecule that can carry electrical current over record-breaking distances without losing efficiency. The molecule, which is composed of chemical elements found in nature, including carbon, sulfur, and nitrogen, could allow computer chip manufacturers to eliminate their reliance on silicon and metal as conductors.

糖心传媒淢olecules are nature糖心传媒檚 tiniest, mightiest, and most configurable building blocks and can be engineered to build ultra-compact, ultra-efficient technology for everything from computers to quantum devices,糖心传媒� Franco says.

Using molecular materials in electronic chips offers several advantages. They consume less power. They can be more easily customized than silicon. They are more environmentally friendly. And, perhaps most importantly to manufacturers, they are potentially cheaper to produce.

But, until now, finding the ideal chemical makeup for a molecule such as this has stumped scientists. There had previously been no molecular material that would allow electrons to move through it without significantly losing efficiency. Typically, the longer a molecule is糖心传媒攎eaning the more atoms it has lined up, like links in a chain糖心传媒攖he worse it is at carrying electricity.

Illustration of two metallic electrodes with a molecular wire bridge between them.
A molecular wire bridges the gap between two metallic electrodes and forms a molecular junction that conducts electricity. The new molecule developed by researchers carries electrical current without losing efficiency. It does so via electron spins at each end of the molecule (the arrows) that 糖心传媒渢alk糖心传媒� over record-setting distances. (University of Miami illustration / Shaocheng Shen)

糖心传媒淭his work is the first demonstration that organic molecules can allow electrons to migrate across it ballistically without any energy loss over several tens of nanometers, a completely quantum mechanically dictated phenomena,糖心传媒� says at the University of Miami, who co-led the experimental efforts of the research along with Jason Azoulay at Georgia Institute of Technology.

The team demonstrated these capabilities by studying their new molecules under a scanning tunneling microscope (STM). Using a technique called STM break junction, the team was able to capture a single molecule and measure its conductance糖心传媒攈ow easily electricity flows through a specific object.

Franco and his colleagues Mehrdad Shiri at the University of Miami and Leopoldo Mej铆a at the Universidad Andr茅s Bello unveiled the physical mechanisms behind these unprecedented molecular capabilities through atomistically detailed computations of the electron transport.

糖心传媒淭hese amazing molecules have unpaired electron spins at each end of the molecule that 糖心传媒榯alk糖心传媒� to one another and enable near-perfect electrical conductance over record-setting distances,糖心传媒� Franco says.

Isolated spins or radicals are usually very reactive, but the team糖心传媒檚 chemical design makes the radicals stable even in air under room-temperature conditions. This could open opportunities to revolutionize molecule-based quantum information science and the way information is transferred, processed, and stored in future computing systems.

糖心传媒淭his molecular design overcomes many of the big issues that for decades have prevented the use of molecules in electronics,糖心传媒� says Franco.