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Nanotechnology Collection (page 4)

Nanotechnology, the groundbreaking field of science that operates at the atomic and molecular level, continues to astound us with its limitless potential

Background imageNanotechnology Collection: Nanotechnology, conceptual artwork F005 / 0805

Nanotechnology, conceptual artwork F005 / 0805
Nanotechnology, conceptual computer artwork

Background imageNanotechnology Collection: Buckyball molecule, artwork F005 / 0747

Buckyball molecule, artwork F005 / 0747
Buckyball molecule, computer artwork

Background imageNanotechnology Collection: Nanoparticles, artwork F005 / 0767

Nanoparticles, artwork F005 / 0767
Nanoparticles, computer artwork

Background imageNanotechnology Collection: Nanotechnology, conceptual artwork F005 / 0807

Nanotechnology, conceptual artwork F005 / 0807
Nanotechnology, conceptual computer artwork

Background imageNanotechnology Collection: Graphene sheet, artwork F005 / 0762

Graphene sheet, artwork F005 / 0762
Graphene sheet, computer artwork

Background imageNanotechnology Collection: Nanotechnology research, conceptual image F005 / 0743

Nanotechnology research, conceptual image F005 / 0743
Nanotechnology research, conceptual computer artwork

Background imageNanotechnology Collection: Nanotechnology, conceptual artwork F005 / 0809

Nanotechnology, conceptual artwork F005 / 0809
Nanotechnology, conceptual computer artwork

Background imageNanotechnology Collection: Graphene sheet, artwork F005 / 0765

Graphene sheet, artwork F005 / 0765
Graphene sheet, computer artwork

Background imageNanotechnology Collection: Buckyball molecule, artwork F005 / 0750

Buckyball molecule, artwork F005 / 0750
Buckyball molecule, computer artwork

Background imageNanotechnology Collection: Buckyball, Buckminsterfullerene molecule

Buckyball, Buckminsterfullerene molecule
Buckminsterfullerene molecule. Computer artwork of a molecular model of a fullerene molecule, a structurally distinct form (allotrope) of carbon

Background imageNanotechnology Collection: Carbon nanotube, artwork F005 / 0737

Carbon nanotube, artwork F005 / 0737
Carbon nanotube. Computer artwork of the inside of a nanotube, or buckytube

Background imageNanotechnology Collection: Buckyball and graphene, artwork F005 / 0795

Buckyball and graphene, artwork F005 / 0795
Buckyball molecule with a sheet of graphene, computer artwork

Background imageNanotechnology Collection: Nanoparticle, artwork F005 / 0791

Nanoparticle, artwork F005 / 0791
Nanoparticle, computer artwork

Background imageNanotechnology Collection: Graphene sheet, artwork F005 / 0763

Graphene sheet, artwork F005 / 0763
Graphene sheet, computer artwork

Background imageNanotechnology Collection: Buckyball and graphene, artwork F005 / 0794

Buckyball and graphene, artwork F005 / 0794
Buckyball molecule with a sheet of graphene, computer artwork

Background imageNanotechnology Collection: Buckyball molecules, artwork F005 / 0746

Buckyball molecules, artwork F005 / 0746
Buckyball molecules, computer artwork

Background imageNanotechnology Collection: Medical nanoparticles, conceptual image F005 / 0801

Medical nanoparticles, conceptual image F005 / 0801
Medical nanoparticles, conceptual computer artwork

Background imageNanotechnology Collection: Flying nanomachine, artwork F006 / 9872

Flying nanomachine, artwork F006 / 9872
Flying nanomachine, computer artwork

Background imageNanotechnology Collection: Nanomachines, artwork F006 / 9870

Nanomachines, artwork F006 / 9870
Nanomachines, computer artwork

Background imageNanotechnology Collection: Flying nanomachine, artwork F006 / 9871

Flying nanomachine, artwork F006 / 9871
Flying nanomachine, computer artwork

Background imageNanotechnology Collection: Nanomachines and USB drive, artwork F006 / 9868

Nanomachines and USB drive, artwork F006 / 9868
Nanomachines and USB drive, computer artwork

Background imageNanotechnology Collection: Nanomachines and pen, artwork F006 / 9869

Nanomachines and pen, artwork F006 / 9869
Nanomachines and pen, computer artwork

Background imageNanotechnology Collection: Nanomachines and USB drive, artwork F006 / 9867

Nanomachines and USB drive, artwork F006 / 9867
Nanomachines and USB drive, computer artwork

Background imageNanotechnology Collection: Amphibious nanomachine, conceptual image F006 / 9865

Amphibious nanomachine, conceptual image F006 / 9865
Amphibious nanomachine, conceptual computer artwork

Background imageNanotechnology Collection: Nanomachine and USB drive, artwork F006 / 9866

Nanomachine and USB drive, artwork F006 / 9866
Nanomachine and USB drive, computer artwork

Background imageNanotechnology Collection: Nanorobots attacking pathogen, artwork F006 / 9852

Nanorobots attacking pathogen, artwork F006 / 9852
Nanorobots attacking pathogen, conceptual computer artwork

Background imageNanotechnology Collection: DNA 6-way junction, artwork C014 / 2585

DNA 6-way junction, artwork C014 / 2585
DNA (deoxyribonucleic acid) cube, computer artwork. The DNA cube is formed from six different DNA strands. Each side of the cube is composed of a single circular DNA strand

Background imageNanotechnology Collection: Graphite specimen, macrophotograph C016 / 7198

Graphite specimen, macrophotograph C016 / 7198
Graphite. Macrophotograph of a specimen of graphite, a form of carbon that occurs naturally close to the Earths surface. It is formed by stacked graphene sheets

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8888

Nanotube structure, artwork C016 / 8888
This image may not be used in educational posters Nanotube structure. Computer artwork of the structure of a cylindrical nanotube

Background imageNanotechnology Collection: Bionic nanotechnology, conceptual artwork C016 / 7502

Bionic nanotechnology, conceptual artwork C016 / 7502
Bionic nanotechnology, conceptual computer artwork

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8889

Nanotube structure, artwork C016 / 8889
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8886

Nanotube structure, artwork C016 / 8886
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8887

Nanotube structure, artwork C016 / 8887
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8890

Nanotube structure, artwork C016 / 8890
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8885

Nanotube structure, artwork C016 / 8885
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8891

Nanotube structure, artwork C016 / 8891
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8883

Nanotube structure, artwork C016 / 8883
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8884

Nanotube structure, artwork C016 / 8884
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Hemolysin-coregulated protein

Hemolysin-coregulated protein, molecular model. This protein is from the bacterium Pseudomonas aeruginosa. It is a hexameric ring structure, named hcp1

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8533

Nanotube structure, artwork C016 / 8533
Nanotube structure. Computer artwork showing a cylindrical nanotube being formed from a sheet of graphene, a single layer of graphite

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8532

Nanotube structure, artwork C016 / 8532
Nanotube structure. Computer artwork showing a cylindrical nanotube being formed from a sheet of graphene, a single layer of graphite

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8530

Nanotube structure, artwork C016 / 8530
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8526

Nanotube structure, artwork C016 / 8526
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8531

Nanotube structure, artwork C016 / 8531
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8528

Nanotube structure, artwork C016 / 8528
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8529

Nanotube structure, artwork C016 / 8529
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8524

Nanotube structure, artwork C016 / 8524
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon

Background imageNanotechnology Collection: Nanotube structure, artwork C016 / 8523

Nanotube structure, artwork C016 / 8523
Nanotube structure. Computer artwork of the structure of a cylindrical nanotube. This molecule is a type of fullerene, a structural type (allotrope) of carbon



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Nanotechnology, the groundbreaking field of science that operates at the atomic and molecular level, continues to astound us with its limitless potential. Imagine a swarm of nanorobots working tirelessly inside our bodies, repairing damaged cells and combating diseases. This futuristic concept comes alive through mesmerizing artwork depicting these tiny marvels in action. One such masterpiece showcases nanotube technology, where intricate structures resembling microscopic tubes hold immense promise for various applications. Another captivating artwork portrays nanorobots delicately maneuvering on a pinhead, highlighting their astonishing precision and agility. Graphene steals the spotlight as an extraordinary material with unparalleled strength and conductivity. An awe-inspiring depiction of a graphene sheet captivates viewers, showcasing its remarkable properties that revolutionize industries ranging from electronics to energy storage. The integration of carbon nanotubes into this realm further expands possibilities. Conceptual artwork envisions how these incredible structures could shape future technologies by enhancing materials' performance or enabling advanced electronic devices. Intriguingly, nanotechnology even offers hope for DNA repair using tiny yet powerful nanobots designed specifically for this purpose. Imaginative illustrations depict these minuscule machines precisely targeting damaged genetic material within our cells—a testament to human ingenuity pushing boundaries beyond imagination. But it doesn't stop there; battling cancer becomes more promising when we witness a brave little nanorobot attacking malignant cells in another captivating piece of art. The potential breakthroughs in targeted therapies bring renewed optimism in the fight against this devastating disease. And finally, self-replicating nanobots take center stage through thought-provoking artwork that explores their ability to reproduce autonomously—opening doors to unimaginable advancements across numerous fields. As we delve deeper into the world of nanotechnology, we are left awestruck by its transformative power and boundless opportunities it presents for humanity's progress.