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Nigel Mason Nigel Mason The Open University The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

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Page 1: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Nigel MasonNigel Mason

The Open UniversityThe Open University

The Atomic and Molecular Database for Radiation Damage –

How COST Nano - IBCT can help

Page 2: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

What is the current status of What is the current status of

the field of radiation damge ?the field of radiation damge ? Our studies in Our studies in the mechanismsthe mechanisms of of

radiation damage has developed radiation damage has developed rapidly in the last decade.rapidly in the last decade.

For example role of DEA in DNA For example role of DEA in DNA damage damage

Page 3: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

What is the current status of What is the current status of

the field of radiation damge ?the field of radiation damge ? Development of new cancer therapies Development of new cancer therapies

eg carbon ions.eg carbon ions.

Page 4: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

HENCEHENCE

Recent research has stressed the Recent research has stressed the need to understand radiation need to understand radiation damage at damage at the molecular level the molecular level This This was aim of RADAM action 2003-was aim of RADAM action 2003-20082008

Page 5: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

This has been coupled with the This has been coupled with the

need to understand effects of low need to understand effects of low dose long term exposure (EU dose long term exposure (EU RISCRAD programme)RISCRAD programme)

Page 6: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Three Grand ChallengesThree Grand Challenges

1.1. Understanding fundamental Understanding fundamental interactions between different interactions between different types of radiation and biomoleculetypes of radiation and biomolecule

2.2. Study of damage to DNA and other Study of damage to DNA and other macromolecules in the cellmacromolecules in the cell

3.3. Developing models of such damage Developing models of such damage for use in therapy etc. for use in therapy etc.

Page 7: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Radiation Damage – the Radiation Damage – the mechanismmechanism

What we need to understand is the What we need to understand is the mechanisms by which strand breaks mechanisms by which strand breaks in DNA occur.in DNA occur.

Can this be understood by single Can this be understood by single collisions ?collisions ?

Is the damage located at specific sites Is the damage located at specific sites in the DNA chain ?in the DNA chain ?

Can we ‘control’ the site & amount of Can we ‘control’ the site & amount of damage ? damage ?

Page 8: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

or X e-

<20 eV

Single and double strand breaks may be induced by secondary

species: a large number of secondary electron with kinetic energies

below about 20 eV, are produced along the radiation track

Damage of the genome in living cell by ionising radiation is about 1/3 a

direct and 2/3 an indirect processes.

Radiation damage to DNA

Electron induced damage of DNAElectron induced damage of DNA

Page 9: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

V(R)

0

A + B + e-

A- + B

R

D(A-B)

EA(A)

e- + AB → (AB)-*

Transit negative ion (TNI)

→ AB-

→ AB + e-

→ A- + B

autodetachment

molecular anion

dissociative electron attachment

Dissociative Electron Attachment

Page 10: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Thymine + e- → TNI-* →electron attachment

C5H6N2O2-

e-dissociative electron attachment

(T-H)- + H(T-2H)- + neutral(s)

C4H5N2O- + neutral(s)

C2H3N2O- + neutral(s)

C3H2NO- + neutral(s)

CN- + neutral(s)

O- + neutral(s)H- + neutral(s)

OCN- + neutral(s)

→→→

→→

→C3H4N- + neutral(s)

DEA to biomolecules

126 amu

125 amu

124 amu

1 amu

16 amu

26 amu

42 amu

54 amu

68 amu

99 amu

73 amu

Page 11: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

0 1 2 3 40

2

4

6

8

10

12

Cro

ss s

ectio

n (1

0-20 m

2)

Electron energy (eV)

H loss

e-

DEA in Thymine

(M-H)-

125 amu

Page 12: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Site selectivity and Chemical control

• Such site selectivity appears to be maintained in larger biomolecules

• Eg if add sugar to base (thymidine) can still target thymine site

• So DEA indicates radiation damage can be explained at a molecular level

Page 13: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

DEA and radiosensitizers

• Can we exploit such site specific damage ?

• Eg in developing new cancer therapies ?

• Consider radiosensitizers

• Au nanoparticles

Page 14: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

E.g exploit enhanced DEA to develop new radiosensitizers

5-nitrouracil

Page 15: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

So exploit enhanced DEA to develop new radiosensitizers 5-nitrouracil

0 1 2 30

5000

10000

0 5 100

3

6

0 5 100

30

60

0 5 100

100

200

0 1 2 30

30000

60000

0 1 2 3 40

5000

10000

0 2 4 6 80

25

50

0 2 4 6 8 100

500

1000

(5NU-H)-

156 Da

a b (5NU-2H)-

155 Da

c(5NU-O)-

141 Da

d (5NU-OH)-

140 Da

e f (5NU-NO2-H)-

110 Da

0 5 10 15 20

gC

3N

2OH-

82 DaC

3N

2O

2

-

96 Da

h

(5NU-NO2)-

111 Da

Ion

yie

ld (

cp

s)

Electron energy (eV)

0 5 10 15 20

Page 16: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

SO !!!

• We are now developing a picture of radiation damage that is based on fundamental collision physics

• Such an understanding may/is leading to opportunity for controlling damage pathways

• Exploitation for new radiotherapy techniques ?

Page 18: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

We need to provide data that is useful in setting clinical protocols

• Medical applications require accurate dose evaluation performed using models

• Available simulation codes (MCNPX, PARTRAC, PENELOPE, GEANT-4): Based on high-energy particle approximations, few molecular details are included

Page 19: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Energy degradation of electrons in H2O

Energy scale (eV)

H2O , 200 Torr

5 mm

2 keV incident energy

(5 single tracks)

Page 20: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Different types of interactions

2 keV electrons in H2O Pressure: 200 Torr

5 single tracks

Ionisation

Neutral dissociation

Excitation

Auger

Page 21: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Such models need

• Cross sections !!!!

• Real numbers not just phenomenology !

Page 22: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Database assessment --What data is needed ?

Electron impact processes• Energy resolved cross sections• Dissociation/ionisation processesIon molecule interactions • Charge state • Energy dependence• Fragmentation – branching ratiosPhoton interactions X-ray to UVSpectroscopy – photostability

Page 23: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Data providers * theory * experiment

Data users in variousapplication fields * fusion science * astrophysics * industrial plasmas * environmental physics * medical (radiotherapy) etc.

Data centers data compilation data evaluation (important but not easy) dissemination and updating of database retrievable online database = easy to access, use, find data

Data

requests

Dat

a ne

eds

Data

pro

vid

e

Dat

a pr

ovid

e

Dat

a se

arch

Data requestedD

ata

search

for

check

International A&M data center network IAEA, NIFS, A-PAN, KAERI, NIST, ORNL, GAPHIOR, VAMDC,

Data provided

feed

back

Views from Database assessed data on cross sections

Page 24: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Electron interactions data in H2O

Page 25: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Summary of the Recommended data on the electron collision cross section for H2O

Y. Itikawa and N.J.Mason, J. Phys. Chem. Ref. Data 34 (2005)1

Page 26: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Total electron scattering and ionisation cross sections in H2O

Total

Ionisation

100%Discrepancy below 5eV

*Muñoz et al., Phys. Rev. A

(2007)

Page 27: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

e-H2O integral cross section data (Courtesy of G Garcia)

1 10 100 1000 10000Electron energy (eV)

0.01

0.1

1

10

100

1000C

ross

sec

tion

(a02

)Total scattering

(5%)

Integral elastic and inelastic

(10%)

Ionisation (7%)

Excitation (15%)

Neutral dissociation

(15%)

Page 28: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Elastic scattering - H2O

1

10

0 30 60 90 120 150 180

Present

Rescigno & Lengsfield (1992)

Okamoto et al (1993)

Gianturco et al (1998)

Varella et al (1999)

DC

S (

10-1

6 cm

2 sr-1

)

Scattering Angle (degrees)

10 eVElastic

0.1

1

10

0 30 60 90 120 150 180

Present (CNU)Johnstone & NewellRescigno & LengsfieldOkamoto et alGianturco et alVarella et al

DC

S (

10-1

6 cm

2 sr-1

)

Scattering Angle (degrees)

6 eVElastic

0.1

1

10

0 30 60 90 120 150 180

Present

Shyn & Cho

Varella et al.

Dif

fere

nti

al C

ross

Sec

tion

(10

-16 c

m2 s

r-1)

Scattering Angle (degrees)

4 eVElastic

Cho, Park, Tanaka, BuckmanJPB 37 625 (2004)

Page 29: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

But what is the measurable in clinic ?

Page 30: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

The stopping power: (-dE/dx)

Page 31: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Mass stopping power of electrons in water: -dE/ dx (Munoz et al)

Page 32: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

But such complete data sets are rare

For most biomoleules MOST cross sections are missing

Some may be calculated – eg ionisation (Theory – Kim (BE) and Deutsch Maerk )And compare well with experiments(But note kinetic effects in products)

Or for total, elastic, some excitationsQuantemol package (J Tennyson)

Page 33: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

But….

• To date most of the ideas are based on knowledge in gas phase

• The cell is not a gas !! For example electronic states are shifted !

• So are gas phase cross sections relevant in modelling radiation damage in a cell ?

Page 34: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Water ice Note : Blue shift in the solid phase

0.0E+00

2.0E-18

4.0E-18

6.0E-18

8.0E-18

1.0E-17

1.2E-17

1.4E-17

1.6E-17

1.8E-17

2.0E-17

6.0 6.5 7.0 7.5 8.0 8.5 9.0 9.5 10.0 10.5

Photon Energy / eV

Cro

ss S

ectio

n

/ cm2

Page 35: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Carbon dioxide Note : Blue shift in the solid phase

0.0E+00

2.0E-19

4.0E-19

6.0E-19

8.0E-19

1.0E-18

1.2E-18

1.4E-18

6.5 7 7.5 8 8.5 9 9.5 10 10.5

Photon Energy / eV

Cro

ss S

ectio

n / c

m2

Page 36: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Comparison of gas and solid phase Methylamine

Note absence of low lying bands in solid phase

Energy (eV)

5 6 7 8 9 10 11

Cro

ss S

ectio

n (

cm

2 )

0

1e-18

2e-18

3e-18

4e-18

5e-18

6e-18

7e-18

Gas PhaseSolid Phase

Page 37: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Cross sections in condensed phase

• TRK sum rule still holds !!

• So where does ’lost flux’ go ?

• How to measure cross sections in condensed phase ?

Page 38: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Studies in condensed phase

• Evidence is that same site selectivity etc holds in condensed films

Page 39: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

GCAT

GCAT

G+C+A+TG+C+A+T

EA - electron affinityEA(CN)= 3.82 eVEA(CNO)= 3.61 eV

DEA to oligomers

O

PO-

NH2

N N

NNHO O

O

O

NH2

O

N

N

P

OO OO-

O

O NH2

N

N

N

N

NN

O

O

O

OO

O

O-

O

OH

G

C

A

Toligomertetramer

(1172 amu)

P

CN- CNO-Gas phase

Condensed phase

Page 40: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Studies in condensed phase

• Evidence is that same site selectivity etc holds in condensed films

• Cross sections in ice have been defined (Sanche)

Page 41: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

But a cell is not a solid either !

• So what is the best mimic of the environment of biomolecules in a cell ?

• What can be explored in the Lab ?

Page 42: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Experiments with clusters • Groningen University

T Schladtholter et al)

• Ion irradiation of biomolecular clusters

• Eg C+ on nucleobasesDeoxyribose and amino acids

Uracil and Thymine Different fragmentation

patterns

Page 43: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Experiments with clusters

• Experiments in He droplets (Innsbruck)

• But is this a mimic of ‘real conditions’ ?

Page 44: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

But what about other biomolecules ?

• DNA is not the only target in the cell !!!

• What about other molecules ?

Page 45: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

What is the role of water and proteins in electron induced damage of DNA?

DNA

Proteins (amino acids)

M. Begusova et al., Int. J.Radiat.Biol. (2003)

bases

sugar

undamage atoms

proteins

undamage atoms

DNA

proteins

• Free electron attachment to amino- acids/nucleobases complexes

• radiation damage of proteins

radiation

Page 46: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

What is the effect of damage to the cell membrane ?

• radiation damage of proteins

Page 47: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

But what about other biomolecules ?

How do we study Lipids and proteins ?

In gas phase or on surfaces ?

Damage may change ion transport through cell membrane !

Page 48: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Direct damage vs Indirect

• All of the discussion so far is based on direct damage but this is only 1/3 of the damage !

• What about mechanisms of indirect damage ?

Page 49: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

And no description can ignore repair

• So in reality we are only exploring one part (important though it is) of the radiation damage process

Page 50: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

And we have more to explore with new projectiles

• What about damage induced by positrons ??

• How do positrons damage DNA ?

• Role of annihilation and gamma rays ?

Page 51: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

So lots of data needed !

• How do we co-ordinate data collection ?

• Where does the user find it ?

• When collected how/where is it stored and ‘ratified’ ?

Page 52: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

VAMDC is funded under the “Combination of Collaborative

Projects and Coordination and Support Actions” Funding

Scheme of The Seventh Framework Program.

Call topic: INFRA-2008-1.2.2 Scientific Data Infrastructure.

Grant Agreement number: 239108.

Page 53: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

• VAMDC will provide a scientific data

e-infrastructure enabling easy access to A+M

resources

• Http://www.vamdc.org/

Page 54: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Atomic & Molecular data underpins a wide range of basic and applied research and industrial development

•Thus there is a need to collect, assess and allow access to a wide range of A&M data

•Hence there many A&M related DATABASES have been developed but such databases are….

•Often in different formats •Access maybe restricted or ‘regional’•Often fragmentary providing ‘partial resource’

So need a common portal ‘single point entry’ to access multiple databases for comprehensive data mining.

Page 55: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

KEY VAMDC OUTCOMES Develop or/and extend standards for

interoperability of AM resources Implementation of selected databases /

Compatibility with existing extraction tools

Find resources easily Registries at a fine granularity

Query those resources Query protocols or/and languages

Transfer large quantities of data, Asynchronous Queries

Create a safe environment where latest AM data can be easily published (even small sets)

Linking producers and users

KEY BENEFITS to usingVAMDC

Find any type of A&M data with a “click”

Uniform access, i.e. saving time with format of data, tools development

Allows cross-matching of different sets of A & M data

Allows wide access to the latest published AM data

This then allows

Increased level of scientific analysis

Page 56: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

VAMDC must meet the users requirements but also the producers requirements

VAMDC must be built in collaboration with many A&M specialists

Page 57: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

A&M users (and data providers)

VAMDC has, in its first year, sought to engagewith its ultimate user base through meetings andworkshops and this session reviews some of thoselinks

Page 58: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

A & M Users – VAMDC clientele

– Astrophysics/Astronomy/Planetary Science– Atmospheric Science– Fusion– Plasma Science– Radiation science

Page 59: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Astronomy/ Planetary Science

Main providers of VAMDC project

Data to interpret observations

and develop models

Many databases exist and are in VAMDC

Page 60: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Astronomy/ Planetary Science

A&M Data needs increase with:

• New projects e.g. ALMA

• Developing science (e.g. exoplanet atmospheres)

Page 61: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Planetary Science

Recent examples of A&M data

• Titan atmosphere• Surfaces of Saturnian moons

• Physical and Chemistry of KBOs

Need ice spectra - Ghosst

Page 62: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Linking to other EU projects

Europlanet/ IDIS project

Lassie (Training Network)

COST Chemical Cosmos

Helio

Great (Training Network)

Page 63: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Atmospheric Science

One of worlds largest and

most controversial fields of science

Global Warming – Climate Change

Pollution and health – legislation

Major observational programme –

Remote sensing

Page 64: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Atmospheric Science

Global Warming – Molecular spectra

Photoabsorption cross sections

Pollution/ aerosols – Chemical reactions

Remote sensing - IR and UV spectra

Instrumentation – Analytical tools for legislation 4 5 6 7 8 9 10 11

Energy [eV]

Cro

ss s

ectio

n [M

b]

Page 65: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Atmospheric Science

Well provide with databases

HITRAN

Integrate VAMDC & Hitran

UV/Vis+ Spectra Data Base

Page 66: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Fusion Science

ITER one of the worlds largest science projects

A&M central to its engineering

IAEA have supported A&M databases for decades

Page 67: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Fusion Science

IAEA AMDIS ALADDDIN database

A&M data and particle surface interactions

E.g. To design negative ion sources

Page 68: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Plasma Science

Industrial development

Device fabrication, pollution control, lighting, medicine

A&M data need in plasma

simulations

Plasimo and Quantemol-D

Page 69: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

The ideal of a virtual factory

Page 70: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Plasma science

• A&M data needed for modelling• New feed gases for ‘greener’ world• Nanotechnology =

atomic/molecular scale• Cross sections/rate constants needed

VAMDC support for Workshops on plasma processing and lighting ESCAMPIG July 2010

Page 71: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Radiation damage

Development of next generation

therapy and understanding risk

(e.g. effect of low dose but long term exposures – topical with Japan!)

Page 72: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Radiation damage

Uses simulation codes (MCNPX, PARTRAC, PENELOPE, GEANT-4)

Requires A & M data input

(G Garcia presentation)

Page 73: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

Radiation damage

• A&M data needed for track modelling• Biological material is represented by gases

(Tissue equivalent material)• Setting protocols so need approved datasets• Solid state/liquid cross sections needed

VAMDC support for Workshop June 30-July 3, 2010 led to;

• Special volume being published• New Cost Action will include working

group data assembly and• Recommendations – link to

fusion/Euratom programme

Page 74: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

VAMDC therefore has to

Engage with users and providers Disseminate its product Sustain itself

Then….

Page 75: Nigel Mason Nigel Mason The Open University The Atomic and Molecular Database for Radiation Damage – How COST Nano - IBCT can help

VAMDC has the potential to be the tool of primary choice for users of A&M data worldwide

To be the ‘google’ for A&M