SlideShare a Scribd company logo
1 of 13
Download to read offline
Synthesis of Nanomaterials
Top-down Bottom-up
R.Gandhimathi
▪ Nanomaterial-A single unit, sized between 1-100nm
▪ E.g., metal nanoparticles, quantum dots (QDs), carbon
nanotubes (CNTs), graphene, and their composites
▪ It possess unique physiochemical properties like
ultrasmall size, large surface area, and the ability to
target specific actions which arise from their nanoscale
dimensions
▪ Nanomaterials can occur naturally, be created as the
by-products of combustion reactions, or be produced
purposefully through engineering to perform a
specialized function
https://www.nature.com/ar
ticles/s41392-019-0068-3
Nano materials
▪ Nanomaterials/nanoparticles are prepared through diverse range of synthesis
approaches like lithographic techniques, ball milling, etching, and sputtering
▪ Synthesis/Fabrication of nanomaterials with tailored properties involve the control of
size, shape, structure, composition and purity of their constituents
▪ Hence the nanomaterial properties can be tuned as desired via precisely controlling the
size, shape, synthesis conditions, and appropriate functionalization.
Synthesis of Nanomaterials
Top-down approaches
Slicing of a bulk material to get nano sized particles
Bottom-up approaches
Build up materials atom by atom
(in which nanoparticles are grown from simpler molecules)
Fabrication of nanomaterials include nanostructured surface, nanoparticles
and nanoporous materials
Nanoparticles are typically synthesized from
a top-down or bottom-up approach
Approaches for the synthesis of nanomaterials
TOP-DOWN APPROACH
Mechanical milling
▪ A grinding method that grinds nanotubes into
extremely fine powders
▪ During the ball milling process, the collision
between the tiny rigid balls in a concealed
container will generate localized high pressure.
▪ Usually, ceramic, flint pebbles and stainless steel
are used
▪ Produces uniform fine powder of 2-20nm in size
▪ Size depends upon the speed of the rotation of the
balls
▪ Possibility of combining it with chemical
treatments, allows obtaining the desired products
with minimal effort.
▪ Ball-milled carbon nanomaterials are considered a
novel class of nanomaterial, providing the
opportunity to satisfy environmental remediation,
energy storage, and energy conversion demands
https://pubs.rsc.org/en/content/articlehtml/2019/na/c8na00238j
• Cost-effective method
• Ideal method for producing blends of
different phases
• Helpful in the production of
nanocomposites
• Used to produce oxide- and carbide-
strengthened aluminum alloys, wear-
resistant spray coatings,
aluminum/nickel/magnesium/copper-
based nanoalloys, and many other
nanocomposite materials.
Electrospinning
▪ simplest top-down method
▪ used to produce nanofibers from a wide variety of materials, typically polymers.
▪ Lengths of these ultrathin nanomaterials can be extended to several centimeters.
▪ Core–shell and hollow polymer, inorganic, organic, and hybrid materials
An electrostatic potential is
applied between a
spinneret and a collector
https://www.sciencedirect.com/scie
nce/article/pii/S136970210671389X
Lithography
A useful tool for developing nanoarchitectures using a
focused beam of light or electrons
Mask less lithography
▪ In mask less lithography,
arbitrary nanopattern writing is
carried out without the
involvement of a mask
▪ 3D freeform micro-nano-
fabrication can be
achieved via ion implantation
with a focused ion beam in
combination with wet chemical
etching
▪ Includes scanning probe
lithography, focused ion beam
lithography, and electron beam
lithography
https://link.springer.com/referenceworkentry/10.1007%2F978-0-387-92897-5_1051
Masked lithography
In masked
nanolithography, nano-
patterns are transferred
over a large surface area
using a specific mask or
template.
Includes photolithography,
nano-imprint lithography &
soft lithography
Sputtering
▪ An effective method for producing thin films of nanomaterials
▪ Bombarding solid surfaces with high-energy particles such as plasma or gas, it
produces nanomaterials
Steps involved
▪ Ions are generated via plasma and directed towards target which sputter target atoms
▪ Ejected atoms are transported to the substrate, there it condenses and form a thin film
▪ Performed in an evacuated chamber
Different sputtering methods
• Magnetron
• Radio-frequency diode
• DC diode sputtering
Advantages
▪ Sputtered nanomaterial composition
remains the same as the target
material with fewer impurities
▪ Cost-effective compared with
electron-beam lithography
Laser ablation
▪ Involves nanoparticle generation using a
powerful laser beam that hits the target
material
▪ Source material or precursor vaporizes
due to the high energy of the laser
irradiation, resulting in nanoparticle
formation
▪ E.g., metal nanoparticles, carbon
nanomaterials, oxide composites, and
ceramics
▪ Utilizing laser ablation for the
generation of noble metal nanoparticles
can be considered as a green technique,
as there is no need for stabilizing agents
or other chemicals
https://www.researchgate.net/figure/Schematic-of-
experiment-setup-for-silver-nanoparticle-production-
with-laser-ablation_fig1_293637284
Bottom-up approaches
To be continued………
Thank you
Like!! Share!!

More Related Content

What's hot

Introduction to Properties of nanomaterials
Introduction to Properties of nanomaterialsIntroduction to Properties of nanomaterials
Introduction to Properties of nanomaterialsMD AHAD ALI
 
Synthesis of nanoparticles- physical,chemical and biological
Synthesis of nanoparticles- physical,chemical and biologicalSynthesis of nanoparticles- physical,chemical and biological
Synthesis of nanoparticles- physical,chemical and biologicalPriya Nanda
 
Quantum Dots and its applications
Quantum Dots and its applicationsQuantum Dots and its applications
Quantum Dots and its applicationsArun Kumar
 
Bio nano (Top-down bottom up approach)
Bio nano (Top-down bottom up approach) Bio nano (Top-down bottom up approach)
Bio nano (Top-down bottom up approach) ManojKumar6080
 
Lithography and Nanolithography
Lithography and NanolithographyLithography and Nanolithography
Lithography and NanolithographySaheem Anwar
 
Classification of Nanostructures by Peeyush Mishra
Classification of Nanostructures by Peeyush MishraClassification of Nanostructures by Peeyush Mishra
Classification of Nanostructures by Peeyush MishraPeeyush Mishra
 
Optical properties of nanomaterials
Optical properties of nanomaterialsOptical properties of nanomaterials
Optical properties of nanomaterialsudhay roopavath
 
Top-Down and Bottom_Up Approches
Top-Down  and Bottom_Up ApprochesTop-Down  and Bottom_Up Approches
Top-Down and Bottom_Up ApprochesDileep Banjare
 
Surface modification of nanomaterials
Surface modification of nanomaterialsSurface modification of nanomaterials
Surface modification of nanomaterialszenziyan
 
NANOTECHNOLOGY AND IT'S APPLICATIONS
NANOTECHNOLOGY AND IT'S APPLICATIONSNANOTECHNOLOGY AND IT'S APPLICATIONS
NANOTECHNOLOGY AND IT'S APPLICATIONSCHINMOY PAUL
 
nanomaterial and dimensional effect
nanomaterial and dimensional effect nanomaterial and dimensional effect
nanomaterial and dimensional effect sameerr98
 
Quantum dots 1
Quantum dots 1Quantum dots 1
Quantum dots 1Ashraf Ali
 
Carbon containing Nanomaterials: Fullerenes & Carbon nanotubes
Carbon containing Nanomaterials: Fullerenes & Carbon nanotubesCarbon containing Nanomaterials: Fullerenes & Carbon nanotubes
Carbon containing Nanomaterials: Fullerenes & Carbon nanotubesMayur D. Chauhan
 
Quantum Dots And Their Properties
Quantum Dots And Their PropertiesQuantum Dots And Their Properties
Quantum Dots And Their PropertiesTanvi Kaple
 
Intro to nanomaterial
Intro to nanomaterialIntro to nanomaterial
Intro to nanomaterialziad zohdy
 
Introduction of Nanotechnology
Introduction of Nanotechnology Introduction of Nanotechnology
Introduction of Nanotechnology NIKET SURESH POWAR
 

What's hot (20)

Introduction to Properties of nanomaterials
Introduction to Properties of nanomaterialsIntroduction to Properties of nanomaterials
Introduction to Properties of nanomaterials
 
Synthesis of nanoparticles- physical,chemical and biological
Synthesis of nanoparticles- physical,chemical and biologicalSynthesis of nanoparticles- physical,chemical and biological
Synthesis of nanoparticles- physical,chemical and biological
 
Quantum Dots and its applications
Quantum Dots and its applicationsQuantum Dots and its applications
Quantum Dots and its applications
 
Bio nano (Top-down bottom up approach)
Bio nano (Top-down bottom up approach) Bio nano (Top-down bottom up approach)
Bio nano (Top-down bottom up approach)
 
Lithography and Nanolithography
Lithography and NanolithographyLithography and Nanolithography
Lithography and Nanolithography
 
Classification of Nanostructures by Peeyush Mishra
Classification of Nanostructures by Peeyush MishraClassification of Nanostructures by Peeyush Mishra
Classification of Nanostructures by Peeyush Mishra
 
Optical properties of nanomaterials
Optical properties of nanomaterialsOptical properties of nanomaterials
Optical properties of nanomaterials
 
Top-Down and Bottom_Up Approches
Top-Down  and Bottom_Up ApprochesTop-Down  and Bottom_Up Approches
Top-Down and Bottom_Up Approches
 
Nanomaterials
NanomaterialsNanomaterials
Nanomaterials
 
Surface modification of nanomaterials
Surface modification of nanomaterialsSurface modification of nanomaterials
Surface modification of nanomaterials
 
NANOTECHNOLOGY AND IT'S APPLICATIONS
NANOTECHNOLOGY AND IT'S APPLICATIONSNANOTECHNOLOGY AND IT'S APPLICATIONS
NANOTECHNOLOGY AND IT'S APPLICATIONS
 
nanomaterial and dimensional effect
nanomaterial and dimensional effect nanomaterial and dimensional effect
nanomaterial and dimensional effect
 
Quantum dots 1
Quantum dots 1Quantum dots 1
Quantum dots 1
 
Carbon containing Nanomaterials: Fullerenes & Carbon nanotubes
Carbon containing Nanomaterials: Fullerenes & Carbon nanotubesCarbon containing Nanomaterials: Fullerenes & Carbon nanotubes
Carbon containing Nanomaterials: Fullerenes & Carbon nanotubes
 
Synthesis of TiO2
Synthesis of TiO2Synthesis of TiO2
Synthesis of TiO2
 
Quantum Dots And Their Properties
Quantum Dots And Their PropertiesQuantum Dots And Their Properties
Quantum Dots And Their Properties
 
Natural nanomaterials
Natural nanomaterialsNatural nanomaterials
Natural nanomaterials
 
Sputtering process
Sputtering processSputtering process
Sputtering process
 
Intro to nanomaterial
Intro to nanomaterialIntro to nanomaterial
Intro to nanomaterial
 
Introduction of Nanotechnology
Introduction of Nanotechnology Introduction of Nanotechnology
Introduction of Nanotechnology
 

Similar to Synthesis of nanomaterials

Nanomaterials synthesis by Yogesh T N 22ECR246.pptx
Nanomaterials synthesis by Yogesh T N 22ECR246.pptxNanomaterials synthesis by Yogesh T N 22ECR246.pptx
Nanomaterials synthesis by Yogesh T N 22ECR246.pptxYOGESHTN22ECR246
 
Plasma compaction & electrodeposition (Nanotechnology)
Plasma compaction & electrodeposition (Nanotechnology)Plasma compaction & electrodeposition (Nanotechnology)
Plasma compaction & electrodeposition (Nanotechnology)Aliasgar Mandsaurwala
 
GENERAL METHODS OF PREPARATION OF NANOO)
GENERAL METHODS OF PREPARATION OF NANOO)GENERAL METHODS OF PREPARATION OF NANOO)
GENERAL METHODS OF PREPARATION OF NANOO)srajece
 
Micro and nano grinding
Micro and nano grindingMicro and nano grinding
Micro and nano grindingMohit Ostwal
 
mao ni akoa kuhaan ug ideas na part.pptx
mao ni akoa kuhaan ug ideas na part.pptxmao ni akoa kuhaan ug ideas na part.pptx
mao ni akoa kuhaan ug ideas na part.pptxGabrielSosoban
 
Unit 5 Nanomaterials and Nanotechnology - 1.pptx
Unit 5 Nanomaterials and Nanotechnology - 1.pptxUnit 5 Nanomaterials and Nanotechnology - 1.pptx
Unit 5 Nanomaterials and Nanotechnology - 1.pptxDr. Sandip Thorat
 
Nano material and surface engineering ppt
Nano material  and surface engineering pptNano material  and surface engineering ppt
Nano material and surface engineering pptVipin Singh
 
09sputterdeposition.ppt
09sputterdeposition.ppt09sputterdeposition.ppt
09sputterdeposition.pptDevendraBhale
 
Chemistry of Materials3_nano.pptx
Chemistry of Materials3_nano.pptxChemistry of Materials3_nano.pptx
Chemistry of Materials3_nano.pptxsant4chem1
 
ETE444-lec5-micro-fabrication.pdf
ETE444-lec5-micro-fabrication.pdfETE444-lec5-micro-fabrication.pdf
ETE444-lec5-micro-fabrication.pdfmashiur
 
ETE444-lec5-micro-fabrication.pdf
ETE444-lec5-micro-fabrication.pdfETE444-lec5-micro-fabrication.pdf
ETE444-lec5-micro-fabrication.pdfmashiur
 
nanocompositesmetalandmetaloxidenps.pptx
nanocompositesmetalandmetaloxidenps.pptxnanocompositesmetalandmetaloxidenps.pptx
nanocompositesmetalandmetaloxidenps.pptxAditya Bhardwaj
 

Similar to Synthesis of nanomaterials (20)

Nanomaterials synthesis by Yogesh T N 22ECR246.pptx
Nanomaterials synthesis by Yogesh T N 22ECR246.pptxNanomaterials synthesis by Yogesh T N 22ECR246.pptx
Nanomaterials synthesis by Yogesh T N 22ECR246.pptx
 
nano ceramics and composites
nano ceramics and compositesnano ceramics and composites
nano ceramics and composites
 
Plasma compaction & electrodeposition (Nanotechnology)
Plasma compaction & electrodeposition (Nanotechnology)Plasma compaction & electrodeposition (Nanotechnology)
Plasma compaction & electrodeposition (Nanotechnology)
 
Nanocomposite
NanocompositeNanocomposite
Nanocomposite
 
GENERAL METHODS OF PREPARATION OF NANOO)
GENERAL METHODS OF PREPARATION OF NANOO)GENERAL METHODS OF PREPARATION OF NANOO)
GENERAL METHODS OF PREPARATION OF NANOO)
 
Micro and nano grinding
Micro and nano grindingMicro and nano grinding
Micro and nano grinding
 
mao ni akoa kuhaan ug ideas na part.pptx
mao ni akoa kuhaan ug ideas na part.pptxmao ni akoa kuhaan ug ideas na part.pptx
mao ni akoa kuhaan ug ideas na part.pptx
 
Preparation of thin films
Preparation of thin filmsPreparation of thin films
Preparation of thin films
 
Nano concrete
Nano concreteNano concrete
Nano concrete
 
Unit 5 Nanomaterials and Nanotechnology - 1.pptx
Unit 5 Nanomaterials and Nanotechnology - 1.pptxUnit 5 Nanomaterials and Nanotechnology - 1.pptx
Unit 5 Nanomaterials and Nanotechnology - 1.pptx
 
Nano material and surface engineering ppt
Nano material  and surface engineering pptNano material  and surface engineering ppt
Nano material and surface engineering ppt
 
Applications of nanomaterials by dr.ck
Applications of nanomaterials by dr.ckApplications of nanomaterials by dr.ck
Applications of nanomaterials by dr.ck
 
poster
posterposter
poster
 
09sputterdeposition.ppt
09sputterdeposition.ppt09sputterdeposition.ppt
09sputterdeposition.ppt
 
Chemistry of Materials3_nano.pptx
Chemistry of Materials3_nano.pptxChemistry of Materials3_nano.pptx
Chemistry of Materials3_nano.pptx
 
ETE444-lec5-micro-fabrication.pdf
ETE444-lec5-micro-fabrication.pdfETE444-lec5-micro-fabrication.pdf
ETE444-lec5-micro-fabrication.pdf
 
ETE444-lec5-micro-fabrication.pdf
ETE444-lec5-micro-fabrication.pdfETE444-lec5-micro-fabrication.pdf
ETE444-lec5-micro-fabrication.pdf
 
Nanochemistry
NanochemistryNanochemistry
Nanochemistry
 
nanocompositesmetalandmetaloxidenps.pptx
nanocompositesmetalandmetaloxidenps.pptxnanocompositesmetalandmetaloxidenps.pptx
nanocompositesmetalandmetaloxidenps.pptx
 
magnetic nps.pptx
magnetic nps.pptxmagnetic nps.pptx
magnetic nps.pptx
 

More from Gandhimathi Muthuselvam

Synthesis of Cadmium Sulfide Nano Particles
Synthesis of Cadmium Sulfide Nano ParticlesSynthesis of Cadmium Sulfide Nano Particles
Synthesis of Cadmium Sulfide Nano ParticlesGandhimathi Muthuselvam
 
Interband and intraband electronic transition in quantum nanostructures
Interband and intraband  electronic transition in quantum nanostructuresInterband and intraband  electronic transition in quantum nanostructures
Interband and intraband electronic transition in quantum nanostructuresGandhimathi Muthuselvam
 
Plasmonic resonance response of metal/dielectric (core/shell) systems
Plasmonic resonance response of metal/dielectric (core/shell) systemsPlasmonic resonance response of metal/dielectric (core/shell) systems
Plasmonic resonance response of metal/dielectric (core/shell) systemsGandhimathi Muthuselvam
 
Drude Model-Dielectric constant of metals
Drude Model-Dielectric constant of metalsDrude Model-Dielectric constant of metals
Drude Model-Dielectric constant of metalsGandhimathi Muthuselvam
 
Effect of metal dopant on photocatalytic performance of TiO2 nano particles
Effect of metal dopant on photocatalytic performance of TiO2 nano particles Effect of metal dopant on photocatalytic performance of TiO2 nano particles
Effect of metal dopant on photocatalytic performance of TiO2 nano particles Gandhimathi Muthuselvam
 

More from Gandhimathi Muthuselvam (14)

Synthesis of Cadmium Sulfide Nano Particles
Synthesis of Cadmium Sulfide Nano ParticlesSynthesis of Cadmium Sulfide Nano Particles
Synthesis of Cadmium Sulfide Nano Particles
 
Interband and intraband electronic transition in quantum nanostructures
Interband and intraband  electronic transition in quantum nanostructuresInterband and intraband  electronic transition in quantum nanostructures
Interband and intraband electronic transition in quantum nanostructures
 
Plasmonic Chain waveguides
Plasmonic Chain waveguidesPlasmonic Chain waveguides
Plasmonic Chain waveguides
 
Mie theory of light scattering
Mie theory of light scatteringMie theory of light scattering
Mie theory of light scattering
 
Quantum cascade Laser
Quantum cascade LaserQuantum cascade Laser
Quantum cascade Laser
 
Plasmonic resonance response of metal/dielectric (core/shell) systems
Plasmonic resonance response of metal/dielectric (core/shell) systemsPlasmonic resonance response of metal/dielectric (core/shell) systems
Plasmonic resonance response of metal/dielectric (core/shell) systems
 
Localized surface plasmon resonance
Localized surface plasmon resonanceLocalized surface plasmon resonance
Localized surface plasmon resonance
 
Surface Enhanced Raman Spectroscopy
Surface Enhanced Raman SpectroscopySurface Enhanced Raman Spectroscopy
Surface Enhanced Raman Spectroscopy
 
Crystallite size and Particle size
Crystallite size and Particle sizeCrystallite size and Particle size
Crystallite size and Particle size
 
Surface plasmon resonance sensor
Surface plasmon resonance sensorSurface plasmon resonance sensor
Surface plasmon resonance sensor
 
Theory of surface plasmon polaritons
Theory of surface plasmon polaritonsTheory of surface plasmon polaritons
Theory of surface plasmon polaritons
 
Drude Model-Dielectric constant of metals
Drude Model-Dielectric constant of metalsDrude Model-Dielectric constant of metals
Drude Model-Dielectric constant of metals
 
Nonlinear optics
Nonlinear opticsNonlinear optics
Nonlinear optics
 
Effect of metal dopant on photocatalytic performance of TiO2 nano particles
Effect of metal dopant on photocatalytic performance of TiO2 nano particles Effect of metal dopant on photocatalytic performance of TiO2 nano particles
Effect of metal dopant on photocatalytic performance of TiO2 nano particles
 

Recently uploaded

Use of mutants in understanding seedling development.pptx
Use of mutants in understanding seedling development.pptxUse of mutants in understanding seedling development.pptx
Use of mutants in understanding seedling development.pptxRenuJangid3
 
Digital Dentistry.Digital Dentistryvv.pptx
Digital Dentistry.Digital Dentistryvv.pptxDigital Dentistry.Digital Dentistryvv.pptx
Digital Dentistry.Digital Dentistryvv.pptxMohamedFarag457087
 
CYTOGENETIC MAP................ ppt.pptx
CYTOGENETIC MAP................ ppt.pptxCYTOGENETIC MAP................ ppt.pptx
CYTOGENETIC MAP................ ppt.pptxCherry
 
TransientOffsetin14CAftertheCarringtonEventRecordedbyPolarTreeRings
TransientOffsetin14CAftertheCarringtonEventRecordedbyPolarTreeRingsTransientOffsetin14CAftertheCarringtonEventRecordedbyPolarTreeRings
TransientOffsetin14CAftertheCarringtonEventRecordedbyPolarTreeRingsSérgio Sacani
 
PODOCARPUS...........................pptx
PODOCARPUS...........................pptxPODOCARPUS...........................pptx
PODOCARPUS...........................pptxCherry
 
GBSN - Biochemistry (Unit 3) Metabolism
GBSN - Biochemistry (Unit 3) MetabolismGBSN - Biochemistry (Unit 3) Metabolism
GBSN - Biochemistry (Unit 3) MetabolismAreesha Ahmad
 
FAIRSpectra - Enabling the FAIRification of Spectroscopy and Spectrometry
FAIRSpectra - Enabling the FAIRification of Spectroscopy and SpectrometryFAIRSpectra - Enabling the FAIRification of Spectroscopy and Spectrometry
FAIRSpectra - Enabling the FAIRification of Spectroscopy and SpectrometryAlex Henderson
 
Cot curve, melting temperature, unique and repetitive DNA
Cot curve, melting temperature, unique and repetitive DNACot curve, melting temperature, unique and repetitive DNA
Cot curve, melting temperature, unique and repetitive DNACherry
 
Genome sequencing,shotgun sequencing.pptx
Genome sequencing,shotgun sequencing.pptxGenome sequencing,shotgun sequencing.pptx
Genome sequencing,shotgun sequencing.pptxCherry
 
Cyathodium bryophyte: morphology, anatomy, reproduction etc.
Cyathodium bryophyte: morphology, anatomy, reproduction etc.Cyathodium bryophyte: morphology, anatomy, reproduction etc.
Cyathodium bryophyte: morphology, anatomy, reproduction etc.Cherry
 
Site specific recombination and transposition.........pdf
Site specific recombination and transposition.........pdfSite specific recombination and transposition.........pdf
Site specific recombination and transposition.........pdfCherry
 
GBSN - Microbiology (Unit 5) Concept of isolation
GBSN - Microbiology (Unit 5) Concept of isolationGBSN - Microbiology (Unit 5) Concept of isolation
GBSN - Microbiology (Unit 5) Concept of isolationAreesha Ahmad
 
Plasmid: types, structure and functions.
Plasmid: types, structure and functions.Plasmid: types, structure and functions.
Plasmid: types, structure and functions.Cherry
 
Porella : features, morphology, anatomy, reproduction etc.
Porella : features, morphology, anatomy, reproduction etc.Porella : features, morphology, anatomy, reproduction etc.
Porella : features, morphology, anatomy, reproduction etc.Cherry
 
Reboulia: features, anatomy, morphology etc.
Reboulia: features, anatomy, morphology etc.Reboulia: features, anatomy, morphology etc.
Reboulia: features, anatomy, morphology etc.Cherry
 
Lipids: types, structure and important functions.
Lipids: types, structure and important functions.Lipids: types, structure and important functions.
Lipids: types, structure and important functions.Cherry
 
FS P2 COMBO MSTA LAST PUSH past exam papers.
FS P2 COMBO MSTA LAST PUSH past exam papers.FS P2 COMBO MSTA LAST PUSH past exam papers.
FS P2 COMBO MSTA LAST PUSH past exam papers.takadzanijustinmaime
 
Cyanide resistant respiration pathway.pptx
Cyanide resistant respiration pathway.pptxCyanide resistant respiration pathway.pptx
Cyanide resistant respiration pathway.pptxCherry
 
X-rays from a Central “Exhaust Vent” of the Galactic Center Chimney
X-rays from a Central “Exhaust Vent” of the Galactic Center ChimneyX-rays from a Central “Exhaust Vent” of the Galactic Center Chimney
X-rays from a Central “Exhaust Vent” of the Galactic Center ChimneySérgio Sacani
 
Daily Lesson Log in Science 9 Fourth Quarter Physics
Daily Lesson Log in Science 9 Fourth Quarter PhysicsDaily Lesson Log in Science 9 Fourth Quarter Physics
Daily Lesson Log in Science 9 Fourth Quarter PhysicsWILSONROMA4
 

Recently uploaded (20)

Use of mutants in understanding seedling development.pptx
Use of mutants in understanding seedling development.pptxUse of mutants in understanding seedling development.pptx
Use of mutants in understanding seedling development.pptx
 
Digital Dentistry.Digital Dentistryvv.pptx
Digital Dentistry.Digital Dentistryvv.pptxDigital Dentistry.Digital Dentistryvv.pptx
Digital Dentistry.Digital Dentistryvv.pptx
 
CYTOGENETIC MAP................ ppt.pptx
CYTOGENETIC MAP................ ppt.pptxCYTOGENETIC MAP................ ppt.pptx
CYTOGENETIC MAP................ ppt.pptx
 
TransientOffsetin14CAftertheCarringtonEventRecordedbyPolarTreeRings
TransientOffsetin14CAftertheCarringtonEventRecordedbyPolarTreeRingsTransientOffsetin14CAftertheCarringtonEventRecordedbyPolarTreeRings
TransientOffsetin14CAftertheCarringtonEventRecordedbyPolarTreeRings
 
PODOCARPUS...........................pptx
PODOCARPUS...........................pptxPODOCARPUS...........................pptx
PODOCARPUS...........................pptx
 
GBSN - Biochemistry (Unit 3) Metabolism
GBSN - Biochemistry (Unit 3) MetabolismGBSN - Biochemistry (Unit 3) Metabolism
GBSN - Biochemistry (Unit 3) Metabolism
 
FAIRSpectra - Enabling the FAIRification of Spectroscopy and Spectrometry
FAIRSpectra - Enabling the FAIRification of Spectroscopy and SpectrometryFAIRSpectra - Enabling the FAIRification of Spectroscopy and Spectrometry
FAIRSpectra - Enabling the FAIRification of Spectroscopy and Spectrometry
 
Cot curve, melting temperature, unique and repetitive DNA
Cot curve, melting temperature, unique and repetitive DNACot curve, melting temperature, unique and repetitive DNA
Cot curve, melting temperature, unique and repetitive DNA
 
Genome sequencing,shotgun sequencing.pptx
Genome sequencing,shotgun sequencing.pptxGenome sequencing,shotgun sequencing.pptx
Genome sequencing,shotgun sequencing.pptx
 
Cyathodium bryophyte: morphology, anatomy, reproduction etc.
Cyathodium bryophyte: morphology, anatomy, reproduction etc.Cyathodium bryophyte: morphology, anatomy, reproduction etc.
Cyathodium bryophyte: morphology, anatomy, reproduction etc.
 
Site specific recombination and transposition.........pdf
Site specific recombination and transposition.........pdfSite specific recombination and transposition.........pdf
Site specific recombination and transposition.........pdf
 
GBSN - Microbiology (Unit 5) Concept of isolation
GBSN - Microbiology (Unit 5) Concept of isolationGBSN - Microbiology (Unit 5) Concept of isolation
GBSN - Microbiology (Unit 5) Concept of isolation
 
Plasmid: types, structure and functions.
Plasmid: types, structure and functions.Plasmid: types, structure and functions.
Plasmid: types, structure and functions.
 
Porella : features, morphology, anatomy, reproduction etc.
Porella : features, morphology, anatomy, reproduction etc.Porella : features, morphology, anatomy, reproduction etc.
Porella : features, morphology, anatomy, reproduction etc.
 
Reboulia: features, anatomy, morphology etc.
Reboulia: features, anatomy, morphology etc.Reboulia: features, anatomy, morphology etc.
Reboulia: features, anatomy, morphology etc.
 
Lipids: types, structure and important functions.
Lipids: types, structure and important functions.Lipids: types, structure and important functions.
Lipids: types, structure and important functions.
 
FS P2 COMBO MSTA LAST PUSH past exam papers.
FS P2 COMBO MSTA LAST PUSH past exam papers.FS P2 COMBO MSTA LAST PUSH past exam papers.
FS P2 COMBO MSTA LAST PUSH past exam papers.
 
Cyanide resistant respiration pathway.pptx
Cyanide resistant respiration pathway.pptxCyanide resistant respiration pathway.pptx
Cyanide resistant respiration pathway.pptx
 
X-rays from a Central “Exhaust Vent” of the Galactic Center Chimney
X-rays from a Central “Exhaust Vent” of the Galactic Center ChimneyX-rays from a Central “Exhaust Vent” of the Galactic Center Chimney
X-rays from a Central “Exhaust Vent” of the Galactic Center Chimney
 
Daily Lesson Log in Science 9 Fourth Quarter Physics
Daily Lesson Log in Science 9 Fourth Quarter PhysicsDaily Lesson Log in Science 9 Fourth Quarter Physics
Daily Lesson Log in Science 9 Fourth Quarter Physics
 

Synthesis of nanomaterials

  • 1. Synthesis of Nanomaterials Top-down Bottom-up R.Gandhimathi
  • 2. ▪ Nanomaterial-A single unit, sized between 1-100nm ▪ E.g., metal nanoparticles, quantum dots (QDs), carbon nanotubes (CNTs), graphene, and their composites ▪ It possess unique physiochemical properties like ultrasmall size, large surface area, and the ability to target specific actions which arise from their nanoscale dimensions ▪ Nanomaterials can occur naturally, be created as the by-products of combustion reactions, or be produced purposefully through engineering to perform a specialized function https://www.nature.com/ar ticles/s41392-019-0068-3 Nano materials
  • 3. ▪ Nanomaterials/nanoparticles are prepared through diverse range of synthesis approaches like lithographic techniques, ball milling, etching, and sputtering ▪ Synthesis/Fabrication of nanomaterials with tailored properties involve the control of size, shape, structure, composition and purity of their constituents ▪ Hence the nanomaterial properties can be tuned as desired via precisely controlling the size, shape, synthesis conditions, and appropriate functionalization. Synthesis of Nanomaterials
  • 4. Top-down approaches Slicing of a bulk material to get nano sized particles Bottom-up approaches Build up materials atom by atom (in which nanoparticles are grown from simpler molecules) Fabrication of nanomaterials include nanostructured surface, nanoparticles and nanoporous materials Nanoparticles are typically synthesized from a top-down or bottom-up approach Approaches for the synthesis of nanomaterials
  • 5.
  • 7. Mechanical milling ▪ A grinding method that grinds nanotubes into extremely fine powders ▪ During the ball milling process, the collision between the tiny rigid balls in a concealed container will generate localized high pressure. ▪ Usually, ceramic, flint pebbles and stainless steel are used ▪ Produces uniform fine powder of 2-20nm in size ▪ Size depends upon the speed of the rotation of the balls ▪ Possibility of combining it with chemical treatments, allows obtaining the desired products with minimal effort. ▪ Ball-milled carbon nanomaterials are considered a novel class of nanomaterial, providing the opportunity to satisfy environmental remediation, energy storage, and energy conversion demands https://pubs.rsc.org/en/content/articlehtml/2019/na/c8na00238j • Cost-effective method • Ideal method for producing blends of different phases • Helpful in the production of nanocomposites • Used to produce oxide- and carbide- strengthened aluminum alloys, wear- resistant spray coatings, aluminum/nickel/magnesium/copper- based nanoalloys, and many other nanocomposite materials.
  • 8. Electrospinning ▪ simplest top-down method ▪ used to produce nanofibers from a wide variety of materials, typically polymers. ▪ Lengths of these ultrathin nanomaterials can be extended to several centimeters. ▪ Core–shell and hollow polymer, inorganic, organic, and hybrid materials An electrostatic potential is applied between a spinneret and a collector https://www.sciencedirect.com/scie nce/article/pii/S136970210671389X
  • 9. Lithography A useful tool for developing nanoarchitectures using a focused beam of light or electrons Mask less lithography ▪ In mask less lithography, arbitrary nanopattern writing is carried out without the involvement of a mask ▪ 3D freeform micro-nano- fabrication can be achieved via ion implantation with a focused ion beam in combination with wet chemical etching ▪ Includes scanning probe lithography, focused ion beam lithography, and electron beam lithography https://link.springer.com/referenceworkentry/10.1007%2F978-0-387-92897-5_1051 Masked lithography In masked nanolithography, nano- patterns are transferred over a large surface area using a specific mask or template. Includes photolithography, nano-imprint lithography & soft lithography
  • 10. Sputtering ▪ An effective method for producing thin films of nanomaterials ▪ Bombarding solid surfaces with high-energy particles such as plasma or gas, it produces nanomaterials Steps involved ▪ Ions are generated via plasma and directed towards target which sputter target atoms ▪ Ejected atoms are transported to the substrate, there it condenses and form a thin film ▪ Performed in an evacuated chamber Different sputtering methods • Magnetron • Radio-frequency diode • DC diode sputtering Advantages ▪ Sputtered nanomaterial composition remains the same as the target material with fewer impurities ▪ Cost-effective compared with electron-beam lithography
  • 11. Laser ablation ▪ Involves nanoparticle generation using a powerful laser beam that hits the target material ▪ Source material or precursor vaporizes due to the high energy of the laser irradiation, resulting in nanoparticle formation ▪ E.g., metal nanoparticles, carbon nanomaterials, oxide composites, and ceramics ▪ Utilizing laser ablation for the generation of noble metal nanoparticles can be considered as a green technique, as there is no need for stabilizing agents or other chemicals https://www.researchgate.net/figure/Schematic-of- experiment-setup-for-silver-nanoparticle-production- with-laser-ablation_fig1_293637284
  • 12. Bottom-up approaches To be continued………