Using bioenergy systems in architecture provides energy by means of negative emissions technologies (NETs). It plays an important role in stabilizing CO2 emissions at low levels. This depends on options of low life cycle emissions (for instance, a sustainable use of biomass residues), and on outcomes that are site-specific and rely on efficient integrated systems that convert biomass into bioenergy. The objective of this study is to develop self-sufficient systems that generate bioelectricity and offer safety, electricity generation efficiency, cost-effectiveness, waste treatment, integration in domestic use, ease of use, reproducibility and availability. The study also intends to elaborate a general design method of embedding and utilizing microorganisms into architectural elements to achieve design ecology, introducing a multidisciplinary research application through a design theory aspect. The study is based on previous experimental work conducted by the authors. Microbial fuel cell technology was applied to exploit the natural potential of a fungal strain that was identified and optimized to be implemented in microbial fuel cells (MFCs) to generate electricity. The outcomes were included in the self-sufficient cluster design that meets the aforementioned conditions. The novelty of this study is the direct use of a bioreactor of MFCs in a design application for bioelectricity production. It aims to reduce the currently high global CO2 emissions that come from the energy supply sector (47%) and from the building sector (3%), as well as to eliminate the need for large-scale infrastructure intervention. This self-sufficient bio-electricity cluster therefore outweighs other abiotic renewable energy resources such as solar energy or wind power.

Abdallah
Y.,
Estevez
A. T.,
Tantawy
D.,
Ibrahim
A.,
Khalil
N.,
“Employing laccase producing Aspergillus sydowii NYKA 510 for cathodic biocatalyst in self-sufficient lighting microbial fuel cell,”
J. Microbiol. Biotechnol.
,
November
2019
.
Alon
U.,
“Network motifs: theory and experimental approaches,”
Nat. Rev. Genet
,
8
,
450
461
,
2007
.
Bonneau
R.,
Facciotti
M. T.,
Reiss
D. J.,
Schmid
A. K.,
Pan
M.,
Kaur
A.,
“A predictive model for transcriptional control of physiology in a free-living cell,”
Cell
,
131
,
1354
1365
,
2007
.
Boogerd
F. C.,
Bruggeman
F. J.,
Richardson
R. C.,
Stephan
A.,
Westerhoff
H. V.,
“Emergence and its place in nature: a case study of biochemical networks,”
Synthese
,
145
,
131
164
,
2005
.
Csete
M. E.,
Doyle
J. C.,
“Reverse engineering of biological complexity,”
Science
,
295
,
1664
1669
,
2002
.
He
F.,
Fromion
V.,
Westerhoff
H. V.,
“(Im)Perfect robustness and adaptation of metabolic networks subject to metabolic and gene-expression regulation: marrying control engineering with metabolic control analysis,”
BMC Syst. Biol
,
7
,
131
,
2013
.
Hoehme
S.,
Drasdo
D.,
“A cell-based simulation software for multi-cellular systems,”
Systems biology Advance
,
2010
.
Johnson
S.,
Emergence: The Connected Lives of Ants, Brains, Cities, and Software
,
New York, NY
:
Scribner
,
2001
.
Kashtan
N.,
Itzkovitz
S.,
Milo
R.,
Alon
U.,
“Topological generalizations of network motifs,”
Phys. Rev. E Stat. Nonlin. Soft Matter Phys
,
70
,
2004
.
Kellert
S. K.,
Heerwagen
J. H.,
Mador
M. L.,
Biophilic design: The theory, science and practice of bringing buildings to life
,
Hoboken, NJ
:
John Wiley & Sons
,
2008
,
432
.
Shu-Yang
F.,
Freedman
B.,
Cote
R.,
“Principles and practice of ecological design,”
Environmental Reviews
,
12
,
2
,
2004
.
Westerhoff
H. V.,
Van Dam
K.
,
Thermodynamics and Control of Biological Free Energy Transduction
,
Amsterdam
:
Elsevier Science Ltd
,
1987
.
Wouters
A. G.,
“Viability explanation,”
Biol. Philos
,
10
,
435
457
,
1995
.
Wouters
A. G.,
“Design explanation: determining the constraints on what can be alive,”
Erkenntnis
,
67
,
65
80
,
2007
,
408.
Westerhoff
H. V.,
Brooks
A. N.,
Simeonidis
E.,
García-Contreras
R.,
He
F.,
Boogerd
F. C.,
Jackson
V. J.,
Goncharuk
V.,
Kolodkin
A.,
“Macromolecular networks and intelligence in microorganisms,”
Front Microbiol
,
5
,
379
,
2014
.
[1]
IPCC Fifth Assessment Report/2014
.
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Author notes

1. Universitat Internacional de Catalunya, iBAG (Institute for Biodigital Architecture & Genetics), [email protected].

2. Helwan University, Faculty of Applied Arts, Department of Interior Design.