@book{40140,
  author       = {{Fuchs, Christian}},
  publisher    = {{Zero Books}},
  title        = {{{OccupyMedia! The Occupy Movement and Social Media in Crisis Capitalism}}},
  year         = {{2014}},
}

@book{40141,
  author       = {{Fuchs, Christian}},
  publisher    = {{Routledge}},
  title        = {{{Digital Labour and Karl Marx}}},
  year         = {{2014}},
}

@book{41446,
  editor       = {{Fuchs, Christian and Mosco, Vincent and Başaran, Funda}},
  publisher    = {{Nota Bene}},
  title        = {{{Marx Geri Döndü. Medya, Meta ve Sermaye Birikimi (Turkish translation of 11 contributions in book format)}}},
  year         = {{2014}},
}

@article{41438,
  author       = {{Fuchs, Christian and Sandoval, Marisol and Prodnik, Jernej A. and Sevignani, Sebastian and Allmer, Thomas}},
  journal      = {{tripleC: Communication, Capitalism & Critique}},
  number       = {{2}},
  pages        = {{464--801}},
  title        = {{{Special Issue: Philosophers of the World Unite! Theorising Digital Labour and Virtual Work - Definitions, Dimensions and Forms}}},
  doi          = {{https://doi.org/10.31269/triplec.v12i2.631}},
  volume       = {{12}},
  year         = {{2014}},
}

@book{41440,
  editor       = {{Fuchs, Christian and Trottier, Daniel}},
  publisher    = {{Routledge}},
  title        = {{{Social Media, Politics and the State: Protests, Revolutions, Riots, Crime and Policing in the Age of Facebook, Twitter and YouTube}}},
  year         = {{2014}},
}

@book{41439,
  editor       = {{Fuchs, Christian and Sandoval, Marisol}},
  publisher    = {{Routledge}},
  title        = {{{Critique, Social Media and the Information Society}}},
  year         = {{2014}},
}

@article{41580,
  author       = {{Fuchs, Christian}},
  journal      = {{International Journal of Communication}},
  pages        = {{2718--2732}},
  title        = {{{WikiLeaks and the Critique of the Political Economy}}},
  volume       = {{8}},
  year         = {{2014}},
}

@inbook{41606,
  author       = {{Fuchs, Christian}},
  booktitle    = {{Critical Studies in Communication and Society}},
  editor       = {{Cao, Jin and Mosco, Vincent and Regan Shade, Leslie}},
  pages        = {{26--79}},
  publisher    = {{Yiwen}},
  title        = {{{Dallas Smythe Today – The Audience Commodity, the Digital Labour Debate, Marxist Political Economy and Critical Theory. Prolegomena to a Digital Labour Theory of Value}}},
  year         = {{2014}},
}

@inbook{41655,
  author       = {{Fuchs, Christian and Cao, Jin and Mosco, Vincent and Regan Shade, Leslie}},
  booktitle    = {{Critical Studies in Communication and Society}},
  pages        = {{496--519}},
  publisher    = {{Yiwen}},
  title        = {{{Web 2.0, Prosumption, and Surveillance}}},
  year         = {{2014}},
}

@article{41662,
  author       = {{Fuchs, Christian}},
  journal      = {{新闻大学 (Journalism Bimonthly) 2014 (5)}},
  pages        = {{8--24}},
  title        = {{{信息资本主义及互联网的劳工 [J]}}},
  year         = {{2014}},
}

@inbook{42393,
  author       = {{Fuchs, Christian and Trottier, Daniel}},
  booktitle    = {{Social Media, Politics and the State: Protests, Revolutions, Riots, Crime and Policing in the Age of Facebook, Twitter and YouTube}},
  editor       = {{Trottier, Daniel and Fuchs, Christian}},
  pages        = {{3--38}},
  publisher    = {{Routledge}},
  title        = {{{Theorising Social Media, Politics and the State: An Introduction}}},
  year         = {{2014}},
}

@inbook{42394,
  author       = {{Fuchs, Christian}},
  booktitle    = {{Social Media, Politics and the State: Protests, Revolutions, Riots, Crime and Policing in the Age of Facebook, Twitter and YouTube}},
  editor       = {{Trottier, Daniel and Fuchs, Christian}},
  pages        = {{88--106}},
  publisher    = {{Routledge}},
  title        = {{{Anonymous: Hacktivism and Contemporary Politics}}},
  year         = {{2014}},
}

@inbook{42395,
  author       = {{Fuchs, Christian}},
  booktitle    = {{The Audience Commodity in a Digital Age. Revisiting a Critical Theory of Commercial Media}},
  editor       = {{McGuigan, Lee and Manzerolle, Vincent}},
  pages        = {{267--288}},
  publisher    = {{Peter Lang}},
  title        = {{{Dallas Smythe Reloaded. Critical Media and Communication Studies Today}}},
  year         = {{2014}},
}

@inbook{42396,
  author       = {{Fuchs, Christian and Sandoval, Marisol}},
  booktitle    = {{Critique, Social Media and the Information Society}},
  editor       = {{Fuchs, Christian and Sandoval, Marisol}},
  pages        = {{1--47}},
  publisher    = {{Routledge}},
  title        = {{{Introduction: Critique, Social Media and the Information Society in the Age of Capitalist Crisis}}},
  year         = {{2014}},
}

@inbook{42397,
  author       = {{Fuchs, Christian}},
  booktitle    = {{Critique, Social Media and the Information Society}},
  editor       = {{Fuchs, Christian and Sandoval, Marisol}},
  pages        = {{51--65}},
  publisher    = {{Routledge}},
  title        = {{{Critique of the Political Economy of Informational Capitalism and Social Media}}},
  year         = {{2014}},
}

@inbook{42391,
  author       = {{Fuchs, Christian}},
  booktitle    = {{Media and left}},
  editor       = {{Çoban, Savaş}},
  pages        = {{15--43}},
  publisher    = {{Brill}},
  title        = {{{Culture, cC/mmunication & Ideology = Forms of Work}}},
  year         = {{2014}},
}

@article{25945,
  abstract     = {{Catalysis plays a central role in many fields of life, e.g., in biochemical processes, to reduce energy costs and resources in chemical industry and to decrease or even avoid environmental pollution and in energy management. Porous alumina (Al2O3) is an essential material in various applications, especially as a support material for catalysts. It is often prepared by nanocasting using porous carbon materials that serve as rigid structure matrices. In this work, an alternative way to synthesize mesoporous Al2O3 by using hydrogels as porogenic material is presented. Hydrogels can easily be patterned by light and used to imprint their structure onto alumina opening a new approach to fabricate patterned Al2O3. The hydrogels used in this work are based on poly(dimethylacrylamide) and were photo-chemically cross-linked. Followed by a nanocasting process, mesoporous alumina samples were synthesized and characterized by N2 physisorption and X-ray diffraction. The cross-linker amount in the polymer network was varied and the influence on the properties of the Al2O3 is analyzed.}},
  author       = {{Birnbaum, Wolfgang and Weinberger, Christian and Schill, Verena and Haffer, Stefanie and Tiemann, Michael and Kuckling, Dirk}},
  issn         = {{0303-402X}},
  journal      = {{Colloid and Polymer Science}},
  pages        = {{3055--3060}},
  title        = {{{Synthesis of mesoporous alumina through photo cross-linked poly(dimethylacrylamide) hydrogels}}},
  doi          = {{10.1007/s00396-014-3379-5}},
  year         = {{2014}},
}

@article{25946,
  abstract     = {{The synthesis of a periodically ordered, nanostructured composite consisting of CoFe2O4 and BaTiO3 is presented. In a first step, mesoporous CoFe2O4 is prepared by the structure replication method (nanocasting) using mesoporous KIT-6 silica as a structural mold. Subsequently, BaTiO3 is created inside the pores of CoFe2O4 by the citrate route, resulting in a well-ordered composite material of both phases. The two components are known for their distinct ferroic properties, namely ferrimagnetism (CoFe2O4) and ferroelectricity (BaTiO3), respectively. Therefore, this proof of synthesis concept offers new perspectives in the fabrication of composite materials with multiferroic properties.}},
  author       = {{Haffer, Stefanie and Lüder, Christian and Walther, Till and Köferstein, Roberto and Ebbinghaus, Stefan G. and Tiemann, Michael}},
  issn         = {{1387-1811}},
  journal      = {{Microporous and Mesoporous Materials}},
  pages        = {{300--304}},
  title        = {{{A synthesis concept for a nanostructured CoFe2O4/BaTiO3 composite: Towards multiferroics}}},
  doi          = {{10.1016/j.micromeso.2014.05.023}},
  year         = {{2014}},
}

@article{25948,
  abstract     = {{Ordered mesoporous silica phases (e.g. KIT-6, SBA-15) are used as structure matrices for negative replica structures of mesoporous In2O3. We present a detailed study on how the controlled synthesis of mono-, bi- and trimodal pore systems in the products is accomplished by systematic variation of the procedure of infiltrating a precursor species (In(NO3)3) into the pores of the silica matrix and subsequent thermal conversion into In2O3. Melt impregnation and conversion in a closed reactor facilitates a one-step casting process for ordered mesoporous indium oxide (In2O3). We present a model based on variation of the pore filling.}},
  author       = {{Klaus, Dominik and Amrehn, Sabrina and Tiemann, Michael and Wagner, Thorsten}},
  issn         = {{1387-1811}},
  journal      = {{Microporous and Mesoporous Materials}},
  pages        = {{133--139}},
  title        = {{{One-step synthesis of multi-modal pore systems in mesoporous In2O3: A detailed study}}},
  doi          = {{10.1016/j.micromeso.2014.01.007}},
  year         = {{2014}},
}

@inbook{25944,
  abstract     = {{Recently indium oxide (In2O3) attracted attention as a material for sensing layers in semiconducting gas sensors. Compared to frequently investigated materials like tin dioxide (SnO2), tungsten trioxide (WO3), or gallium oxide (Ga2O3) indium oxide offers some unique properties. The most prominent one is its selectivity to oxidizing gases such as ozone (O3) or nitrogen dioxide (NO2) at low operating temperatures (<150°C). Combined with the photoreduction properties of nanocast, porous In2O3 highly selective sensing layers with a fast response can be prepared. In some cases even room temperature measurements are possible; therefore this material allows for designing low-power sensors without the need for special sensor substrates (e.g., μ-hotplates). Detailed analysis of the sensing mechanism reveals that known sensing models are not able to describe the observed effects. Therefore a new sensing model for ordered nanoporous In2O3 is presented which will be applicable for nonstructured material too.}},
  author       = {{Wagner, Thorsten and Donato, Nicola and Tiemann, Michael}},
  booktitle    = {{Springer Series on Chemical Sensors and Biosensors}},
  issn         = {{1612-7617}},
  title        = {{{New Sensing Model of (Mesoporous) In2O3}}},
  doi          = {{10.1007/5346_2013_57}},
  year         = {{2014}},
}

