E. Knittle and R. Jeanloz, Science, vol.235, p.668, 1987.

F. Nestola, Nature, vol.555, pp.237-278, 2018.

M. F. Zwinkels, Catalysis Today, vol.47, pp.73-82, 1999.

H. Huang, Diamond & Related Materials, vol.91, pp.199-206, 2019.

Q. Wang and L. Ma, New J. Chem, vol.43, pp.2974-80, 2019.

, Louvain's thesis manuscript « Relations Structures-Propriétés dans des matériaux hybrides multifonctionnels : Investigations structurales et théoriques. » (2008) <tel-00450691> 15 Wikipedia 16 Earth-Building Bridgmanite, 2014.

L. An and H. Onishi, ACS Catal, vol.5, pp.3196-206, 2015.

T. Ishihara, J. of Luminescence, vol.60, pp.269-74, 1994.

D. B. Mitzi, Nature, vol.369, pp.467-476, 1994.

F. Hao, Nat. Photon, vol.8, pp.489-94, 2014.

B. Park, Adv. Mater, vol.27, pp.6806-6819, 2015.

G. Stoumpos, J. Am. Chem. Soc, vol.137, pp.6804-6823, 2015.

S. Lee, , vol.227, pp.311-315, 2018.

N. Ito, J. Phys. Chem. Lett, vol.97, pp.1682-1690, 2018.

A. Leblanc, Angew. Chem. Int. Ed, vol.56, pp.16067-72, 2017.

C. K. Møller, Nature, vol.182, p.1436, 1958.

D. Weber, Zeitschrift für Naturforschung B, vol.33, pp.862-867, 1978.

D. Weber, Zeitschrift für Naturforschung B, vol.33, pp.1443-1448, 1978.

D. B. Mitzi-;-k and . Karlin, Synthesis, Structure, and Properties of Organic-Inorganic Perovskites and Related Materials' in Progress in Inorganic Chemistry, 1999.

Y. H. Kim, Adv. Mater, vol.27, p.1248, 2015.

W. Yu, Nature Communications, vol.9, p.354, 2018.

M. Grätzel, Nature Materials, vol.13, pp.838-880, 2014.

O. Almora, Rev. Cub. Fís, vol.34, issue.1, pp.58-68, 2017.

H. Cho, Science, vol.4, pp.1222-1227, 2015.

A. Kojima, J. Am. Chem. Soc, vol.131, pp.6050-6051, 2009.

J. Burschka, Nature, vol.499, pp.316-319, 2013.

N. J. Jeon, Nature Materials, vol.13, pp.897-903, 2014.

N. J. Jeon, Nature, vol.517, issue.7535, pp.476-80, 2015.

W. S. Yang, Science, vol.348, issue.6240, pp.1234-1241, 2015.

M. Saliba, Energy Environ. Sci, vol.9, 1989.

K. Ono, ACS Appl. Mater. Interfaces, vol.9, pp.30197-246, 2017.

V. M. Goldschmidt and ;. Saliba, Die Naturwissenschaften, vol.21, pp.206-215, 1926.

N. Li, Nature Energy, vol.4, pp.408-423, 2019.

M. Salado, ChemSusChem, vol.12, p.11, 2019.

J. H. Noh, Nano Lett, vol.13, pp.1764-69, 2013.

B. O&apos;regan and M. Grätzel, Nature, vol.353, pp.737-777, 1991.

J. Jeng, Adv. Mater, vol.25, pp.3727-3759, 2013.

M. Liu, Nature, vol.501, pp.395-403, 2013.

K. Wang, ACS Appl. Mater. Interfaces, vol.6, pp.11851-11859, 2014.

X. Li, Nature Chemistry, vol.7, pp.703-714, 2015.

M. Saliba, Chem. Mater, vol.30, pp.4193-201, 2018.

K. C. Wang, Sc. Reports, vol.23, p.4756, 2014.

Z. Yu and L. Sun, Adv. Energy Mater, vol.5, p.1500213, 2015.

L. Caliò, Angew. Chem. Int. Ed, vol.55, pp.14522-14567, 2016.

P. K. Kung, Adv. Mater. Interfaces, vol.5, p.1800882, 2018.

J. Urieta-mora, Chem. Soc. Rev, vol.47, pp.8541-71, 2018.

H. Liu, Nanoscale, vol.8, pp.6209-6230, 2016.

K. Mahmood, RSC Adv, vol.7, pp.17044-62, 2017.

J. Lian, Small Methods, vol.2, p.1800082, 2018.

Y. Chen, J. of Energy Chem, vol.35, pp.144-67, 2019.

A. , Adv. Mater, vol.30, p.1800455, 2018.

N. J. Jeon, Nature Materials, vol.13, pp.897-903, 2014.

A. T. Mallajosyula, Applied MaterialsToday, vol.3, pp.96-102, 2016.

J. Burschka, Nature, vol.499, pp.316-325, 2013.

J. B. Whitaker, Sustainable Energy Fuels, vol.2, pp.2442-2451, 2018.

F. Mathies, J. Mater. Chem. A, vol.4, pp.19207-19220, 2016.

C. Zuo, Nano Energy, vol.46, pp.185-92, 2018.

H. Chen, Nature, vol.550, pp.92-97, 2017.

S. Han, ACS Appl. Mater. Interfaces, vol.10, pp.7281-7289, 2018.

A. K. Chilvery, J. of Photonics for Energy, vol.5, p.53093, 2015.

K. Yan, J. Am. Chem. Soc, vol.137, pp.4460-4468, 2015.

X. Cao, ACS Appl. Mater. Interfaces, vol.11, pp.7639-54, 2019.

H. Tsai, Adv. Energy Mater, vol.7, p.1602159, 2017.

L. K. Ono, J. Mater. Chem. A, vol.4, pp.6693-713, 2016.

C. W. Chen, Adv. Mater, vol.26, pp.6647-52, 2014.

M. R. Leyden, J. Mater. Chem. A, vol.2, pp.18742-18747, 2014.

L. K. Ono, Energy Environ. Sci, vol.7, pp.3989-93, 2014.

C. Momblona, APL Mater, vol.2, p.81504, 2014.

O. Malinkiewicz, Adv. Energy Mater, vol.4, p.1400345, 2014.

G. El-hajje, Energy Environ. Sci, vol.9, pp.2286-94, 2016.

L. Gil-escrig, J. Mater. Chem. A, vol.4, pp.3667-72, 2016.

L. Gil-escrig, Organic Electronics, vol.37, pp.396-401, 2016.

C. Momblona, Energy Environ. Sci, vol.9, p.3456, 2016.

L. Caliò, Solar Energy Mater. & Solar Cells, vol.163, pp.237-278, 2017.

D. Pérez-del-rey, J. Phys. Chem. Lett, vol.9, pp.1041-1047, 2018.

B. Dänekamp, J. Mater. Chem. B, vol.7, pp.523-530, 2019.

H. D. Pham, J. Mater. Chem. A, vol.7, pp.12507-12524, 2019.

D. Kiermasch, J. Mater. Chem. A, vol.7, pp.14712-14734, 2019.

D. Pérez-del-rey, Chem. Mater, 2019.

J. Teuscher, ChemSusChem, vol.8, pp.3847-52, 2015.

D. Zhao, Nano Energy, vol.19, pp.88-97, 2016.

J. B. Patel, Adv. Electron. Mater, p.1600470, 2017.

J. J. Samueli, The discovery of X-rays by Röntgen

W. C. Röntgen, Über eine neue Art von Strahlen" (1895) Sitzunsberichten der Würzburger Physik.-medic. Gesellschaft, English translation in Nature

W. C. Röntgen, Über eine neue Art von Strahlen 2, 1896.

W. C. Röntgen, Weitere Beobachtungen über die Eigenschaften der X Strählen, 1897) Sitzunsberichten der Akademie der Wissenschaften zu Berlin 128 nobelprize.org 129 'Inventions: Diagnotic X-rays' from

E. H. Grubbé, Radiology, vol.21, pp.156-62, 1933.

B. L. Henke, Atomic Data and Nuclear Data Tables, vol.54, pp.181-342, 1993.

Y. Joly and S. Grenier, Theory of X-ray absorption near edge structure' in X-Ray Absorption and X-Ray Emission Spectroscopy: Theory and Applications, 2006.

C. S. Schnohr and M. C. Ridgway, Introduction to X-ray absorption spectroscopy' in X-ray absorption spectroscopy of semi-conductors, 2015.

X. , Spectroscopy Chemistry LibreTexts

O. Björneholm, Phys. Rev. Lett, vol.79, pp.3150-3153, 1997.

J. R. Helliwell, Nature Structural Biology, vol.5, pp.614-621, 1998.

A. L. Robinson, History of Synchrotron Radiation' from X-ray Data Booklet

, Lightsources.org resources

M. N. Piancastelli, Intro to SR and FEL spectroscopy' for EUSpec Winter School on core levels, 2016.

F. Baudelet, Les origines du rayonnement synchrotron' in Histoire de la recherche contemporaine Rayonnement Synchrotron: de Frascati à SOLEIL, pp.1963-2013, 2014.

F. Méot, An introduction to particule accelerators, 2009.

F. R. Elder, Phys. Rev, vol.71, pp.829-859, 1947.

E. Nasa, J. Hester, and A. , Loll (ASU) NASA image gallery 150 image adapted from, J. Synchrotron Rad, vol.5, pp.135-139, 1998.

D. Iwanenko and I. Pomeranchuk, Phys. Rev, vol.65, p.343, 1944.

A. Liénard, (1898) L'éclairage électrique, pp.16-21

J. P. Blewett, Phys. Rev, vol.69, p.157, 1946.

A. P. Hitchcock, J. Biomater Sci. Polymer Edn, vol.13, pp.919-956, 2002.

J. Kirz and C. Jacobsen, ) J. of Physics: Conference series, vol.186, p.12001, 2009.

G. Schmid, M. Obst, J. Wu, and A. Hitchcock, 3D chemical imaging of nanoscale biological, environmental and synthetic materialsby Soft X-ray STXM spectrotomography' in X-ray and Neutron Techniques for Nanomaterials Characterization, 2016.

H. H. Pattee, J. of the Opt. Soc. of America, vol.43, pp.61-63, 1953.

P. Horowitz and J. Howell, Science, vol.178, pp.608-619, 1972.

B. Niemann, Optics Comm, vol.12, pp.160-163, 1974.

B. Niemann, ) Appl. Optics, vol.15, pp.1883-1887, 1976.

H. Rarback, Rev. of Sc. Inst, vol.59, p.52, 1988.

H. Rarback, Nucl. Inst. and Methods in Phys. Res, vol.246, pp.159-62, 1986.

H. Rarback, Nucl. Inst. and Methods in Phys. Res, vol.291, pp.54-63, 1990.

J. Kirz, Nucl. Inst. and Methods in Phys. Res, vol.266, pp.293-298, 1988.

J. Kirz, Physica Scripta, vol.31, pp.12-19, 1990.

J. Kirz, Rev. of Sc. Inst, vol.63, p.557, 1992.

C. Jacobsen, Photochem. and Photobio, vol.44, pp.421-424, 1986.

C. Jacobsen, J. of Microscopy, vol.197, pp.173-84, 2000.

A. L. Kilcoyne, J. Synchrotron Rad, vol.10, pp.125-161, 2003.

A. Bruker and . Stxm,

A. P. Hitchcock, J. of Elec. Spectro. and Related Phenom, pp.49-63, 0200.

J. R. Lawrence, Appl Environ Microbiol, vol.69, pp.5543-54, 2003.

E. G. Rightor, J. Phys. Chem. B, vol.101, pp.1950-60, 1997.

, Hitchcock group publications 'Polymers and polymer model studies

A. P. Hitchcock, Bibliography of Soft X-ray, Polymer, vol.49, pp.643-75, 2008.

R. Barrett, AIP Conf. Proc, vol.507, p.458, 2000.

A. Gianoncelli, Appl. Phys. Lett, vol.89, p.251117, 2006.

C. Jacobsen, J. of Microscopy, vol.172, pp.121-130, 1993.

C. Nanomaterials-characterization and . Kumar, , 2016.

R. C. Moffet, A. T. Tivanski, and M. K. Gilles, Scanning Transmission X-ray Microscopy: Applications in Atmospheric Aerosol Research' in Fundamentals and Applications in Aerosol Spectroscopy, 2010.

C. R. Mc-neill, Nano Lett, vol.6, pp.1202-1208, 2006.

C. R. Mc-neill, Nanotechnology, vol.19, p.424015, 2008.

C. Hub, J. Mater. Chem, vol.20, pp.4884-4887, 2010.

S. Swaraj, Nano Lett, vol.10, pp.2863-2872, 2010.

W. Zhang, Polym. Adv. Technol, vol.22, pp.65-71, 2011.

S. Pack, Polymer, vol.53, pp.4787-99, 2012.

B. A. Collins and H. Ade, J. of Elec. Spectro. and Related Phenom, vol.185, pp.119-147, 2012.

J. Dhar, J. Phys. Chem. B, vol.119, issue.34, pp.11307-11323, 2015.

Q. Arnoux, Nano Research, vol.5, pp.2771-82, 2017.

, WAXD: Grazing-Incidence Wide-Angle X-ray Diffraction; XPS: X-ray Photoelectron Spectroscopy; XRF: X-ray Fluorescence

, WAXS: Wide Angle X-ray Scattering; GI-WAXS: Grazing Incidence Wide Angle X-ray Scattering; SRPES: Synchrotron Radiation PhotoEmission Spectroscopy)

H. Li, Nanomater. Nanotechnol, vol.6, p.24, 2016.

J. Zhao, Sc. Rep, vol.6, p.21976, 2016.

J. A. Mc-leod, Nanoscale, vol.8, pp.6361-6369, 2016.

L. T. Schelhas, ACS Energy Letters, vol.1, pp.1007-1019, 2016.

G. Ji, Appl. Surf. Sc, vol.393, pp.417-438, 2016.

N. K. Kim, Sc. Rep, vol.7, p.4645, 2017.

N. Rolston, Adv. Energy Mater, p.1802139, 2018.

K. H. Stone, Nature Comm, vol.9, p.3458, 2018.

F. Hilt, Energy Environ. Sci, vol.11, pp.2102-2115, 2018.

M. Alsari, Energy Environ. Sci, vol.11, p.383, 2018.

X. Li, Chinese J. of Chem. Phys, 2019.

M. W. Lin, Adv. Mater. Interfaces, vol.3, p.1600135, 2016.

M. H. Li, Adv. Mater, vol.30, p.1801401, 2018.

. Heliatek and . Asca, , 2016.

. Oxfordpv, , 2019.

, Science, vol.235, p.668, 1987.

F. Nestola, Catalysis Today, vol.555, pp.73-82, 1999.

H. Huang, Diamond & Related Materials, vol.91, pp.199-206, 2019.

Q. Wang and L. Ma, adapted from N. Louvain's thesis manuscript « Relations Structures-Propriétés dans des matériaux hybrides multifonctionnels : Investigations structurales et théoriques. » (2008) <tel-00450691> Wikipedia Earth-Building Bridgmanite, vol.43, pp.2974-80, 2014.

L. An and H. Onishi, ACS Catal, vol.5, pp.3196-206, 2015.

T. Ishihara, J. of Luminescence, vol.60, pp.269-74, 1994.

D. B. Mitzi, Nature, vol.369, pp.467-476, 1994.

F. Hao, Nat. Photon, vol.8, pp.489-94, 2014.

B. Park, Adv. Mater, vol.27, pp.6806-6819, 2015.

G. Stoumpos, J. Am. Chem. Soc, vol.137, pp.6804-6823, 2015.

S. Lee, , vol.227, pp.311-315, 2018.

N. Ito, J. Phys. Chem. Lett, vol.97, pp.1682-1690, 2018.

A. Leblanc, Angew. Chem. Int. Ed, vol.56, pp.16067-72, 2017.

C. K. Møller, Nature, vol.182, p.1436, 1958.

D. Weber, Zeitschrift für Naturforschung B, vol.33, pp.862-867, 1978.

D. Weber, Zeitschrift für Naturforschung B, vol.33, pp.1443-1448, 1978.

D. B. Mitzi-;-k and . Karlin, Synthesis, Structure, and Properties of Organic-Inorganic Perovskites and Related Materials' in Progress in Inorganic Chemistry, 1999.

H. Kim, Adv. Mater, vol.27, p.1248, 2015.

W. Yu, Nature Communications, vol.9, p.354, 2018.

M. Grätzel, Nature Materials, vol.13, pp.838-880, 2014.

O. Almora, Rev. Cub. Fís, vol.34, issue.1, pp.58-68, 2017.

H. Cho, Science, vol.4, pp.1222-1227, 2015.

A. Kojima, J. Am. Chem. Soc, vol.131, pp.6050-6051, 2009.

E. Becquerel, Comptes rendus des séances de l'Académie des sciences, vol.9, p.561, 1839.

W. Shockley and H. J. Queisser, J. Appl. Phys, vol.32, p.510, 1961.

S. H. Moon, Sci. Rep, vol.5, p.8970, 2015.

S. Lu, Sc. China Chem, vol.60, pp.460-71, 2017.

P. Colter, Crystals, vol.8, p.445, 2018.

M. Yamaguchi, Solar Energy Materials & Solar Cells, vol.51, pp.495-504, 2014.

, Franhofer Photovoltaics Report, 2019.

T. Todorov, Mol. Syst. Des. Eng, vol.1, p.591, 2012.

, Sciences' top 10 breakthroughs, 2013.

, NREL efficiency chart

D. Angelis, ACS Energy Lett, vol.4, issue.4, 2019.

J. Burschka, Nature, vol.499, pp.316-319, 2013.

N. J. Jeon, Nature Materials, vol.13, pp.897-903, 2014.

N. J. Jeon, Nature, vol.517, issue.7535, pp.476-80, 2015.

W. S. Yang, Science, vol.348, issue.6240, pp.1234-1241, 2015.

M. Saliba, Energy Environ. Sci, vol.9, 1989.

L. K. Ono, ACS Appl. Mater. Interfaces, vol.9, pp.30197-246, 2017.

V. M. Goldschmidt, Die Naturwissenschaften, vol.21, pp.477-85, 1926.

M. Saliba, Science, vol.354, pp.206-215, 2016.

N. Li, Nature Energy, vol.4, pp.408-423, 2019.

M. Salado, ChemSusChem, vol.12, p.11, 2019.

J. H. Noh, Nano Lett, vol.13, pp.1764-69, 2013.

B. O&apos;regan and M. Grätzel, Nature, vol.353, pp.737-777, 1991.

J. Jeng, Adv. Mater, vol.25, pp.3727-3759, 2013.

M. Liu, Nature, vol.501, pp.395-403, 2013.

K. Wang, ACS Appl. Mater. Interfaces, vol.6, pp.11851-11859, 2014.

X. Li, Nature Chemistry, vol.7, pp.703-714, 2015.

M. Saliba, Chem. Mater, vol.30, pp.4193-201, 2018.

K. C. Wang, Sc. Reports, vol.23, p.4756, 2014.

Z. Yu and L. Sun, Adv. Energy Mater, vol.5, p.1500213, 2015.

L. Caliò, Angew. Chem. Int. Ed, vol.55, pp.14522-14567, 2016.

P. K. Kung, Adv. Mater. Interfaces, vol.5, p.1800882, 2018.

J. Urieta-mora, Chem. Soc. Rev, vol.47, pp.8541-71, 2018.

H. Liu, Nanoscale, vol.8, pp.6209-6230, 2016.

K. Mahmood, RSC Adv, vol.7, pp.17044-62, 2017.

J. Lian, Small Methods, vol.2, p.1800082, 2018.

Y. Chen, J. of Energy Chem, vol.35, pp.144-67, 2019.

A. , Adv. Mater, vol.30, p.1800455, 2018.

N. J. Jeon, Nature Materials, vol.13, pp.897-903, 2014.

A. T. Mallajosyula, Applied MaterialsToday, vol.3, pp.96-102, 2016.

J. Burschka, Nature, vol.499, pp.316-325, 2013.

J. B. Whitaker, Sustainable Energy Fuels, vol.2, pp.2442-2451, 2018.

F. Mathies, J. Mater. Chem. A, vol.4, pp.19207-19220, 2016.

C. Zuo, Nano Energy, vol.46, pp.185-92, 2018.

H. Chen, Nature, vol.550, pp.92-97, 2017.

S. Han, ACS Appl. Mater. Interfaces, vol.10, pp.7281-7289, 2018.

A. K. Chilvery, J. of Photonics for Energy, vol.5, p.53093, 2015.

K. Yan, J. Am. Chem. Soc, vol.137, pp.4460-4468, 2015.

X. Cao, ACS Appl. Mater. Interfaces, vol.11, pp.7639-54, 2019.

H. Tsai, Adv. Energy Mater, vol.7, p.1602159, 2017.

L. K. Ono, J. Mater. Chem. A, vol.4, pp.6693-713, 2016.

C. W. Chen, Adv. Mater, vol.26, pp.6647-52, 2014.

M. R. Leyden, J. Mater. Chem. A, vol.2, pp.18742-18747, 2014.

L. K. Ono, Energy Environ. Sci, vol.7, pp.3989-93, 2014.

D. B. Mitzi, Chem. Mater, vol.11, pp.542-546, 1999.

P. Fan, Sc. Reports, vol.6, p.29910, 2016.

G. Longo, Chem. Comm, vol.51, p.7376, 2015.

M. Tai, ACS Appl. Mater. Interfaces, vol.10, pp.26206-26218, 2018.

J. Avila, Joule, vol.1, pp.432-474, 2017.

M. Era, Chem. Mater, vol.9, pp.8-10, 1997.

O. Malinkiewicz, Nature Photonics, vol.8, pp.128-160, 2014.

S. Kim, Org. Elec, vol.17, pp.102-108, 2015.

S. Kim, J. Mater. Chem. A, 4, vol.15, pp.5663-5671, 2016.

Q. Lin, Nature Photonics, vol.9, pp.106-118, 2015.

C. Momblona, APL Mater, vol.2, p.81504, 2014.

O. Malinkiewicz, Adv. Energy Mater, vol.4, p.1400345, 2014.

G. El-hajje, Energy Environ. Sci, vol.9, pp.2286-94, 2016.

. Gil-escrig, J. Mater. Chem. A, vol.4, pp.3667-72, 2016.

. Gil-escrig, Organic Electronics, vol.37, pp.396-401, 2016.

C. Momblona, Energy Environ. Sci, vol.9, p.3456, 2016.

L. Caliò, Solar Energy Mater. & Solar Cells, vol.163, pp.237-278, 2017.

D. Pérez-del-rey, J. Phys. Chem. Lett, vol.9, pp.1041-1047, 2018.

B. Dänekamp, J. Mater. Chem. B, vol.7, pp.523-530, 2019.

D. Pham, J. Mater. Chem. A, vol.7, pp.12507-12524, 2019.

D. Kiermasch, J. Mater. Chem. A, vol.7, pp.14712-14734, 2019.

D. Pérez-del-rey, Chem. Mater, 2019.

J. Teuscher, ChemSusChem, vol.8, pp.3847-52, 2015.

D. Zhao, Nano Energy, vol.19, pp.88-97, 2016.

B. Patel, Adv. Electron. Mater, p.1600470, 2017.

Q. Chen, J. Am. Chem. Soc, vol.136, pp.622-627, 2014.

J. J. Samueli, The discovery of X-rays by Röntgen', bibnum library W. C. Röntgen "Über eine neue Art von Strahlen" (1895) Sitzunsberichten der Würzburger Physik.-medic. Gesellschaft, English translation in Nature W. C. Röntgen "Über eine neue Art von Strahlen 2, 1896.

W. C. Röntgen, Weitere Beobachtungen über die Eigenschaften der X Strählen" (1897) Sitzunsberichten der Akademie der Wissenschaften zu Berlin nobelprize.org 'Inventions: Diagnotic X-rays' from Darmouth, Radiology, vol.21, pp.156-62, 1933.

L. Henke, Atomic Data and Nuclear Data Tables, vol.54, pp.181-342, 1993.

Y. Joly and S. Grenier, Theory of X-ray absorption near edge structure' in X-Ray Absorption and X-Ray Emission Spectroscopy: Theory and Applications, 2006.

C. S. Schnohr and M. C. Ridgway, Introduction to X-ray absorption spectroscopy' in X-ray absorption spectroscopy of semi-conductors, Phys. Rev. Lett, vol.79, p.128, 1997.

M. Newville, Reviews in Mineralogy and Geochemistry, XRD Bruker J. R. Helliwell, vol.78, issue.1, pp.614-621, 1998.

L. Robinson, History of Synchrotron Radiation' from X-ray Data Booklet Lightsources.org resources M. N. Piancastelli 'Intro to SR and FEL spectroscopy, 2016.

F. Baudelet, Les origines du rayonnement synchrotron' in Histoire de la recherche contemporaine Rayonnement Synchrotron: de Frascati à SOLEIL, 1963.

F. Méot, An introduction to particule accelerators, 2009.

R. Elder, Phys. Rev, vol.71, pp.829-859, 1947.

E. Nasa, J. Hester, and A. , Loll (ASU) NASA image gallery, J. P. Blewett, vol.5, pp.135-139, 1998.

D. Iwanenko and I. Pomeranchuk, Phys. Rev, vol.65, p.343, 1944.

A. Liénard, (1898) L'éclairage électrique, pp.16-21

P. John, ;. Blewett, and . Belkhou, 87 SOLEIL education resources SOLEIL beamlines, J. Biomater Sci. Polymer Edn, vol.69, pp.919-956, 1946.

J. Kirz and C. Jacobsen, ) J. of Physics: Conference series, vol.186, p.12001, 2009.

G. Schmid, M. Obst, J. Wu, and A. Hitchcock, 3D chemical imaging of nanoscale biological, environmental and synthetic materialsby Soft X-ray STXM spectrotomography' in X-ray and Neutron Techniques for Nanomaterials Characterization, 2016.

H. H. Pattee, ;. Horowitz, and J. Howell, J. of the Opt. Soc. of America, vol.43, pp.608-619, 1953.

B. Niemann, Optics Comm, vol.12, pp.160-163, 1974.

B. Niemann, ) Appl. Optics, vol.15, pp.1883-1887, 1976.

H. Rarback, Rev. of Sc. Inst, vol.59, p.52, 1988.

H. Rarback, J. Kenney, J. Kirz, and X. Xie, Scanning Soft X-ray Microscopy: First Tests with Synchrotron Radiation' in Scanned Image Microscopy, 1980.

H. Rarback, Nucl. Inst. and Methods in Phys. Res, vol.246, pp.159-62, 1986.

H. Rarback, Nucl. Inst. and Methods in Phys. Res, vol.291, pp.54-63, 1990.

J. Kirz, Nucl. Inst. and Methods in Phys. Res, vol.266, pp.293-298, 1988.

J. Kirz, Physica Scripta, vol.31, pp.12-19, 1990.

J. Kirz, Rev. of Sc. Inst, vol.63, p.557, 1992.

C. Jacobsen, Photochem. and Photobio, vol.44, pp.421-424, 1986.

C. Jacobsen, J. of Microscopy, vol.197, pp.173-84, 2000.

A. L. Kilcoyne, J. Synchrotron Rad, vol.10, pp.125-161, 2003.

A. Bruker, . P. Stxm-a, and . Hitchcock, J. of Elec. Spectro. and Related Phenom, pp.49-63, 0200.

A. P. Hitchcock&apos;s-bibliography-of-soft, X. Microscopy, and T. H. Yoon, Langmuir, vol.20, pp.10361-10367, 2004.

H. Bluhm, J. of Elec. Spectro. and Related Phenom, vol.150, pp.86-104, 2006.

H. Ade and S. Urquhart, NEXAFS spectroscopy and microscopy of natural and synthetic polymers' in Chemical Applications of Synchrotron Radiation, T.-K. Sham (2002) x-ray-optics, Microsc. Microanal, vol.24, issue.S2, pp.272-275, 2018.

I. Mohacsi, Optics Letters, vol.41, pp.281-285, 2016.

J. R. Lawrence, Appl Environ Microbiol, vol.69, pp.5543-54, 2003.

E. G. Rightor, J. Phys. Chem. B, vol.101, pp.1950-60, 1997.

, Hitchcock group publications 'Polymers and polymer model studies' A. P. Hitchcock 'Bibliography of Soft X-ray, Polymer, vol.49, pp.643-75, 2008.

R. Barrett, AIP Conf. Proc, vol.507, p.458, 2000.

A. Gianoncelli, Appl. Phys. Lett, vol.89, p.251117, 2006.

C. Jacobsen, J. of Microscopy, vol.172, pp.121-130, 1993.

. Mantis, Multivariate ANalysis Tool for Spectromicroscopy)

G. Schmid, M. Obst, J. Wu, A. Hitchcock, and ;. Kumar, 3D Chemical Imaging of Nanoscale Biological, Environmental, and Synthetic Materials by Soft X-Ray STXM Spectrotomography' In X-ray and Neutron Techniques for Nanomaterials Characterization, 2016.

R. C. Moffet, A. T. Tivanski, M. K. Gilles-;-c, and . Mc-neill, Scanning Transmission X-ray Microscopy: Applications in Atmospheric Aerosol Research' in Fundamentals and Applications in Aerosol Spectroscopy, Nano Lett, vol.6, pp.1202-1208, 2006.

C. R. Mc-neill, Nanotechnology, vol.19, p.424015, 2008.

C. Hub, J. Mater. Chem, vol.20, pp.4884-4887, 2010.

S. Swaraj, Nano Lett, vol.10, pp.2863-2872, 2010.

W. Zhang, Polym. Adv. Technol, vol.22, pp.65-71, 2011.

S. Pack, Polymer, vol.53, pp.4787-99, 2012.

B. A. Collins and H. Ade, J. of Elec. Spectro. and Related Phenom, vol.185, pp.119-147, 2012.

J. Dhar, J. Phys. Chem. B, vol.119, issue.34, pp.11307-11323, 2015.

Q. Arnoux, Nano Research, vol.5, pp.2771-82, 2017.

H. Li, Nanomater. Nanotechnol, vol.6, p.24, 2016.

J. Zhao, Sc. Rep, vol.6, p.21976, 2016.

J. A. Mc-leod, Nanoscale, vol.8, pp.6361-6369, 2016.

L. T. Schelhas, ACS Energy Letters, vol.1, pp.1007-1019, 2016.

G. Ji, Appl. Surf. Sc, vol.393, pp.417-438, 2016.

N. K. Kim, Sc. Rep, vol.7, p.4645, 2017.

N. Rolston, Adv. Energy Mater, p.1802139, 2018.

K. H. Stone, Nature Comm, vol.9, p.3458, 2018.

F. Hilt, Energy Environ. Sci, vol.11, pp.2102-2115, 2018.

M. Alsari, Energy Environ. Sci, vol.11, p.383, 2018.

X. Li, Chinese J. of Chem. Phys, 2019.

M. W. Lin, Adv. Mater. Interfaces, vol.3, p.1600135, 2016.

M. H. Li, Adv. Mater, vol.30, 2018.

. Fiji,

M. Shirayama, J. of Applied Physics, vol.119, p.115501, 2016.