An integrated atomic force and polarized Raman microscope were used to measure the elastic properties of individual diphenylalanine (FF) nano- and micro-tubes and to obtain quantitative information regarding the inter-molecular interactions that define their mechanical properties. For individual tubes, co-localised force spectroscopy and Raman spectroscopy measurements allowed the calculation of the Young's and shear moduli (25 ± 5 GPa and 0.28 ± 0.05 GPa, respectively) and the contribution of hydrogen bonding network to the Young's modulus (∼17.6 GPa). The π-π interactions between the phenyl rings, dominated by T-type arrangements, were estimated based on previously published X-ray data to only 0.20 GPa. These results provide experimental evidence obtained from individual FF tubes that the network of H-bonds dominates the elastic properties of the FF tubes.

1.
T.
Aida
,
E. W.
Meijer
, and
S. I.
Stupp
,
Science
335
,
813
(
2012
).
2.
I. W.
Hamley
,
Angew. Chem. Int. Ed.
46
,
8128
(
2007
).
4.
M.
Goedert
and
M. G.
Spillantini
,
Science
314
,
777
(
2006
).
5.
E. D.
Roberson
and
L.
Mucke
,
Science
314
,
781
(
2006
).
6.
M.
Reches
and
E.
Gazit
,
Science
300
,
625
(
2003
).
7.
X.
Yan
,
P.
Zhu
, and
J.
Li
,
Chem. Soc. Rev.
39
,
1877
(
2010
).
8.
T. P.
Knowles
,
A. W.
Fitzpatrick
,
S.
Meehan
,
H. R.
Mott
,
M.
Vendruscolo
,
C. M.
Dobson
, and
M. E.
Welland
,
Science
318
,
1900
(
2007
).
9.
S.
Keten
,
Z.
Xu
,
B.
Ihle
, and
M. J.
Buehler
,
Nature Mater.
9
,
359
(
2010
).
10.
N.
Kol
,
L.
Adler-Abramovich
,
D.
Barlam
,
R. Z.
Shneck
,
E.
Gazit
, and
I.
Rousso
,
Nano Lett.
5
,
1343
(
2005
).
11.
L.
Niu
,
X.
Chen
,
S.
Allen
, and
S. J. B.
Tendler
,
Langmuir
23
,
7443
(
2007
).
12.
I.
Azuri
,
L.
Adler-Abramovich
,
E.
Gazit
,
O.
Hod
, and
L.
Kronik
,
J. Am. Chem. Soc.
136
,
963
969
(
2014
).
13.
C. S.
Sweetenham
,
M.
Larraona-Puy
, and
I.
Notingher
,
Appl. Spectrosc.
65
,
1387
(
2011
).
14.
B.
Lekprasert
,
V.
Korolkov
,
A.
Falamas
,
V.
Chis
,
C. J.
Roberts
,
S. J. B.
Tendler
, and
I.
Notingher
,
Biomacromolecules
13
,
2181
(
2012
).
15.
V. L.
Sedman
,
L.
Adler-Abramovich
,
S.
Allen
,
E.
Gazit
, and
S. J. B.
Tendler
,
J. Am. Chem. Soc.
128
,
6903
(
2006
).
16.
S. A.
Asher
,
A.
Ianoul
,
G.
Mix
,
M. N.
Boyden
,
A.
Karnop
,
M.
Diem
, and
R.
Schweitzer-Stenner
,
J. Am. Chem. Soc.
123
,
11775
(
2001
).
17.
A. V.
Mikhonin
,
S. V.
Bykov
,
N. S.
Myshakina
, and
S. A.
Asher
,
J. Phys. Chem. B
110
,
1928
(
2006
).
18.
N. S.
Myshakina
,
Z.
Ahmed
, and
S. A.
Asher
,
J. Phys. Chem. B
112
,
11873
(
2008
).
19.
M. C.
Chen
and
R. C.
Lord
,
J. Am. Chem. Soc.
96
,
4750
(
1974
).
20.
W. H.
Moore
and
S.
Krimm
,
Biopolymers
15
,
2439
(
1976
).
21.
W. H.
Moore
and
S.
Krimm
,
Biopolymers
15
,
2465
(
1976
).
22.
J. F.
Rabolt
,
W. H.
Moore
, and
S.
Krimm
,
Macromolecules
10
,
1065
(
1977
).
23.
C. A.
Hunter
and
J. K. M.
Sanders
,
J. Am. Chem. Soc.
112
,
5525
(
1990
).
24.
M. O.
Sinnokrot
and
C. D.
Sherrill
,
J. Phys. Chem. A
108
,
10200
(
2004
).
25.
G. B.
McGaughey
,
M.
Gagne
, and
A. K.
Rappe
,
J. Biol. Chem.
273
,
15458
(
1998
).
26.
C.
Guo
,
Y.
Luo
,
R.
Zhou
, and
G.
Wei
,
ACS Nano
6
,
3907
(
2012
).
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