Together with national battery experts from science and industry Fraunhofer ISI has developed battery roadmaps for lithium ion batteries, energy storage for electric mobility and stationary storage systems from a German/ European perspective. Combined with results of international monitoring and benchmarking studies the paper provides an outlook of the technical, economical and political developments for electrochemical storage with focus on Lithium-Ion batteries, future scenarios and expected impacts through 2020, 2030 and beyond.

1.
Roadmap for moving to a low-carbon economy in 2050
.
European Commission
(
2011
), http://ec.europa.eu/clima/policies/roadmap/faq_en.htm.
2.
Energy Roadmap 2050
,
Impact assessment and scenario analysis, European Commission, 15.12.2011 and Öko-Institute/ Wuppertal Institute
(
2012
), compiled from data provided by DG Energy, EC.
3.
Tangible ways towards climate protection in the European Union (EU Long-term scenarios 2050)
,
Fraunhofer ISI
(
2012
).
4.
Automotive Industry Portal
(Website: http://www.marklines.com/en/).
6.
M.
Anderman
:
Assessing the Future of Hybrid and Electric Vehicles: The xEV Industry Insider Report (2014 Edition)
.
Oregon House/California
,
USA
:
AAB (Advanced Automotive Batteries
).
7.
Avicenne ENERGY
.
The Worldwide rechargeable Battery Market 2012 – 2025
(22nd Edition).
Puteaux Cedex
,
Frankreich
: avicenne ENERGY (
2012
).
9.
A.
Thielmann
, et al.: Integrated Roadmap Energy Storage for Electric Mobility 2030, to be published (
2015
).
10.
A.
Thielmann
, et al.:
Product Roadmap Lithium Ion Batteries 2030
,
Fraunhofer ISI
(
2012
).
11.
S.
Piot
:
Using the learning curve concept to predict technological progress: A particular focus on the Lithiumion battery technology
.
Dissertation
.
Cambridge University
(
2008
).
12.
D. L.
Anderson
:
An Evaluation of current and Future costs for Lithium-Ion Batteriers for Use in Electrified Vehicle Powertrains
(
2009
) (http://dukespace.lib.duke.edu/dspace/bitstream/handle/10161/1007/Li-Ion_Battery_costs_-_MP_Final.pdf;jsessionid=E0AAFCC66D4B7DAC025E5DB66A681DAE?sequence=1).
13.
C.-X.
Zu
,
H.
Li
:
Thermodynamic analysis on energy densities of batteries
,
Energy Environ. Sci.
4
,
2614
(
2011
).
14.
Y.
Nishi
:
Lithium-ion secondary batteries; past 10 years and the future
,
J. Power Sources
100
,
101
(
2001
).
15.
J. M.
Tarascon
:
Batteries for transportation now and in the future
(
2009
), (http://energy2050.se/uploads/files/tarascon.pdf).
16.
Tesla Motors: Tesla Motors Overview
(
2008
).
17.
Freedonia Group: Figure 8
:
Li-Ion Pricing and energy density
(
2011
), (http://batteryuniversity.com/images/parttwo-55h.gif).
18.
NEDO
,
Battery Development Roadmap
,
Japan
,
2006, 2008, 2010
,
2013
.
19.
A.
Thielmann
, et al.:
Technology Roadmap Energy Storage for Electric Mobility 2030
,
Fraunhofer ISI
(
2012
).
20.
A.
Thielmann
, et al.:
Product Roadmap Energy Storage for Electric Mobility 2030
, to be published (
2015
).
21.
A.
Thielmann
, et al.:
Technology Roadmap Stationary Energy Storage 2030
, to be published (
2015
).
22.
A.
Thielmann
, et al.:
Integrated Roadmap Stationary Energy Storage 2030
, to be published (
2015
).
23.
A.
Thielmann
, et al.:
Product Roadmap Stationary Energy Storage 2030
, to be published (
2015
).
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