Showing posts with label molecular engineering. Show all posts
Showing posts with label molecular engineering. Show all posts

Thursday, October 1, 2015

Molecular nanoribbons as electronic highways


Physicists at Umeå University have, together with researchers at UC Berkeley, USA, developed a method to synthesise a unique and novel type of material which resembles a graphene nanoribbon but in molecular form. This material could be important for the further development of organic solar cells. The results have been published in the scientific journal ACS Nano.

The nanoribbons are comprised of molecules with the chemical formula [6,6]-phenyl-C61-butyric acid methyl ester. For short it is denoted PCBM, and in practice it is a fullerene molecule (a football-shaped carbon molecule) with an attached side arm to increase its solubility. PCBM molecules are commonly used in organic solar cells since they have a very good ability to transport free electrons that are “generated” by solar light.

The researchers at Umeå University and UC Berkeley have now developed a method to arrange such molecules into thin, crystalline nanoribbons that are only four nanometres wide. The nanoribbons are grown in a solution process with quite high efficiency and all nanoribbons have a unique morphology with edges in a zigzag.

“It is a very intriguing material and the method is quite simple. The material resembles the more commonly known graphene nanoribbons, but in our material each carbon atom is ‘replaced’ by a molecule,” says Thomas Wågberg, associate professor at the Department of Physics, who has led the study.

The findings are interesting for several reasons; it is the first time that structures with so small dimensions have been produced with this type of molecule, and the dimensions of the nanoribbons suggest that they should be ideal as “electronic highways” in organic solar cells. An organic solar cell usually consists of two types of material, one that conducts the electrons and one that conducts the “holes” that are left behind when the electron gets an energy boost from the incoming solar light (you can see the transport of “hole” as an empty space in traffic moving backwards in a traffic queue moving forwards).

An electron conductor in organic solar cells should ideally form long pathways to the electrode but concurrently be thinner than 10-15 nanometres (approximately 10,000 times thinner than a normal hair). The newly developed PCBM nanoribbons fulfil all these requirements.

“Together with professor Ludvig Edman’s group at the Department of Physics at Umeå University, we are now investigating this material further as a potential component in organic solar cells in the hope of making such devices more efficient,” says Thomas Wågberg.

Our study is of course also interesting for fundamental reasons since it opens up possibilities to investigate important physical properties of molecular materials with nanoscale dimensions.

About nanoribbons:

 

Carbon nanostructures exist in many different forms. Graphene is a single layer of carbon atoms, which can be “ripped” into nanoribbons under certain circumstances. Due to the decrease in dimensions along one direction, the graphene nanoribbons display many unique properties.

Fullerenes on the other hand are football-shaped molecules also built up from carbon atoms, while PCBM are fullerene-like molecules with several interesting properties and an attached side arm to increase their solubility. In the current study the researchers have been able to construct nanoribbons comprising PCBM molecules instead of carbon atoms, so that the structure strongly resembles a graphene nanoribbon in molecular form.


Monday, May 25, 2015

Single-Molecule Diode Could Lead To Breakthroughs In Nanoscale Devices





Researchers created a single-molecule diode, which has been sought after since the 1970s.

Scientists have designed a new way to create a single-molecule diode that performs 50 times better than past models.

These single-molecule diodes are the first that could be used for real-world applications in nanoscale devices, Columbia University School of Engineering and Applied Sciencereported. The idea of creating a single-molecule diode was first proposed in the 1970s by Arieh Aviram and Mark Ratner, who theorized that a molecule could act as a "rectifier" to conduct one-way currents.

molecular electronics ever since its inception with Aviram and Ratner's 1974 seminal paper, represents the ultimate in functional miniaturization that can be achieved for an electronic device," said Latha Venkataraman, associate professor of applied physics at Columbia Engineering.

Since the 1974 paper, scientists have determined single-molecules attached themselves to metal electrodes, and act as a number of circuit elements such as switches, resistors, and diodes. A diode works as an "electricity valve," and requires an asymmetrical structure in order to create different environments for electricity flowing in each direction.

"While such asymmetric molecules do indeed display some diode-like properties, they are not effective," said Brian Capozzi, a PhD student working with Venkataraman and lead author of the paper. "A well-designed diode should only allow current to flow in one direction-the 'on' direction-and it should allow a lot of current to flow in that direction. Asymmetric molecular designs have typically suffered from very low current flow in both 'on' and 'off' directions, and the ratio of current flow in the two has typically been low. Ideally, the ratio of 'on' current to 'off' current, the rectification ratio, should be very high."

To remedy this, the researchers worked to develop asymmetry in the environment around the molecular junction. They accomplished this by surrounding the active molecule with an ionic solution and employed the use of gold metal electrodes that differed in size to contact the molecule. The method led to rectification ratios as high as 250, which is 50 times higher than earlier designs.

"It's amazing to be able to design a molecular circuit, using concepts from chemistry and physics, and have it do something functional," Venkataraman said. "The length scale is so small that quantum mechanical effects are absolutely a crucial aspect of the device. So it is truly a triumph to be able to create something that you will never be able to physically see and that behaves as intended."

The findings were published in a recent edition of the journal Nature Nanotechnology.

http://engineering.columbia.edu/news-archive

DNA Double Helix Does Double Duty in Assembling Arrays of Nanoparticles


octahedral frames
A combination cryo-electron microscopy image of an octahedral frame with one gold nanoparticle bound to each of the six vertices, shown from three different angles
Synthetic pieces of biological molecule form framework and glue for making nanoparticle clusters and arrays

In a new twist on the use of DNA in nanoscale construction, scientists at the U.S. Department of Energy's (DOE) Brookhaven National Laboratory and collaborators put synthetic strands of the biological material to work in two ways: They used ropelike configurations of the DNA double helix to form a rigid geometrical framework, and added dangling pieces of single-stranded DNA to glue nanoparticles in place. 
The method, described in the journal Nature Nanotechnology, produced predictable clusters and arrays of nanoparticles—an important step toward the design of materials with tailored structures and functions for applications in energy, optics, and medicine.
"These arrays of nanoparticles with predictable geometric configurations are somewhat analogous to molecules made of atoms," said Brookhaven physicist Oleg Gang, who led the project at the Lab's Center for Functional Nanomaterials (CFN), a DOE Office of Science User Facility. "While atoms form molecules based on the nature of their chemical bonds, there has been no easy way to impose such a specific spatial binding scheme on nanoparticles. This is exactly the problem that our method addresses." 
Using the new method, the scientists say they can potentially orchestrate the arrangements of different types of nanoparticles to take advantage of collective or synergistic effects. Examples could include materials that regulate energy flow, rotate light, or deliver biomolecules. 
"We may be able to design materials that mimic nature's machinery to harvest solar energy, or manipulate light for telecommunications applications, or design novel catalysts for speeding up a variety of chemical reactions," Gang said.
octahedrons
Scientists built octahedrons using ropelike structures made of bundles 
of DNA double-helix molecules to form the frames (a). Single strands of 
DNA attached at the vertices (numbered in red) can be used to attach 
nanoparticles coated with complementary strands. This approach can 
yield a variety of structures, including ones with the same type of particle 
at each vertex (b), arrangements with particles placed only on certain 
vertices (c), and structures with different particles placed strategically 
on different vertices (d).
"We may be able to design materials that harvest solar energy, manipulate light, or speed up a variety of chemical reactions." — Brookhaven physicist Oleg Gang

The scientists demonstrated the technique to engineer nanoparticle architectures using an octahedral scaffold with particles positioned in precise locations on the scaffold according to the specificity of DNA coding. The designs included two different arrangements of the same set of particles, where each configuration had different optical characteristics. They also used the geometrical clusters as building blocks for larger arrays, including linear chains and two-dimensional planar sheets.
"Our work demonstrates the versatility of this approach and opens up numerous exciting opportunities for high-yield precision assembly of tailored 3D building blocks in which multiple nanoparticles of different structures and functions can be integrated," said CFN scientist Ye Tian, one of the lead authors on the paper.
Details of assembly
This nanoscale construction approach takes advantage of two key characteristics of the DNA molecule: the twisted-ladder double helix shape, and the natural tendency of strands with complementary bases (the A, T, G, and C letters of the genetic code) to pair up in a precise way. 
First, the scientists created bundles of six double-helix molecules, then put four of these bundles together to make a stable, somewhat rigid building material—similar to the way individual fibrous strands are woven together to make a very strong rope. The scientists then used these ropelike girders to form the frame of three-dimensional octahedrons, "stapling" the linear DNA chains together with hundreds of short complementary DNA strands.
"We refer to these as DNA origami octahedrons," Gang said.
To make it possible to "glue" nanoparticles to the 3D frames, the scientists engineered each of the original six-helix bundles to have one helix with an extra single-stranded piece of DNA sticking out from both ends. When assembled into the 3D octahedrons, each vertex of the frame had a few of these "sticky end" tethers available for binding with objects coated with complementary DNA strands.
"When nanoparticles coated with single strand tethers are mixed with the DNA origami octahedrons, the 'free' pieces of DNA find one another so the bases can pair up according to the rules of the DNA complementarity code. Thus the specifically DNA-encoded particles can find their correspondingly designed place on the octahedron vertices" Gang said.
The scientists can change what binds to each vertex by changing the DNA sequences encoded on the tethers. In one experiment, they encoded the same sequence on all the octahedron's tethers, and attached strands with a complementary sequence to gold nanoparticles. The result: One gold nanoparticle attached to each of octahedron's six vertices. 
In additional experiments the scientists changed the sequence of some vertices and used complementary strands on different kinds of particles, illustrating that they could direct the assembly and arrangement of the particles in a very precise way. In one case they made two different arrangements of the same three pairs of particles of different sizes, producing products with different optical properties. They were even able to use DNA tethers on selected vertices to link octahedrons end to end, forming chains, and in 2D arrays, forming sheets.
Visualization of arrays
octahedrons
By strategically placing tethers on particular vertices, the scientists
used the octahedrons to link nanoparticles into one-dimensional
chainlike arrays (left) and two-dimensional square sheets (right). 
Confirming the particle arrangements and structures was a major challenge because the nanoparticles and the DNA molecules making up the frames have very different densities. Certain microscopy techniques would reveal only the particles, while others would distort the 3D structures. 
To see both the particles and origami frames, the scientists used cryo-electron microscopy (cryo-EM), led by Brookhaven Lab and Stony Brook University biologist Huilin Li, an expert in this technique, and Tong Wang, the paper's other lead co-author, who works in Brookhaven's Biosciences department with Li. They had to subtract information from the images to "see" the different density components separately, then combine the information using single particle 3D reconstruction and tomography to produce the final images. 
"Cryo-EM preserves samples in their near-native states and provides close to nanometer resolution," Wang said. "We show that cryo-EM can be successfully applied to probe the 3D structure of DNA-nanoparticle clusters."
These images confirm that this approach to direct the placement of nanoparticles on DNA-encoded vertices of molecular frames could be a successful strategy for fabricating novel nanomaterials.
This research was supported by the DOE Office of Science.
Brookhaven National Laboratory is supported by the Office of Science of the U.S. Department of Energy.  The Office of Science is the single largest supporter of basic research in the physical sciences in the United States, and is working to address some of the most pressing challenges of our time.  For more information, please visit science.energy.gov.