Oliaei, Samad Nadimi Bavil

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Oliaei, Samad Nadimi Bavil
Job Title
Doktor Öğretim Üyesi
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Department of Mechanical Engineering
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Sustainable Development Goals

2

ZERO HUNGER
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0

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11

SUSTAINABLE CITIES AND COMMUNITIES
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0

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14

LIFE BELOW WATER
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6

CLEAN WATER AND SANITATION
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1

NO POVERTY
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5

GENDER EQUALITY
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9

INDUSTRY, INNOVATION AND INFRASTRUCTURE
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5

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16

PEACE, JUSTICE AND STRONG INSTITUTIONS
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17

PARTNERSHIPS FOR THE GOALS
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15

LIFE ON LAND
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10

REDUCED INEQUALITIES
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7

AFFORDABLE AND CLEAN ENERGY
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8

DECENT WORK AND ECONOMIC GROWTH
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4

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3

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This researcher does not have a Scopus ID.
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Scholarly Output

9

Articles

4

Views / Downloads

47/373

Supervised MSc Theses

3

Supervised PhD Theses

0

WoS Citation Count

70

Scopus Citation Count

79

WoS h-index

5

Scopus h-index

5

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0

Projects

0

WoS Citations per Publication

7.78

Scopus Citations per Publication

8.78

Open Access Source

1

Supervised Theses

3

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JournalCount
19th International Carpathian Control Conference (ICCC) -- MAY 28-31, 2018 -- Szilvasvarad, HUNGARY1
Journal of Mechanical Science and Technology1
Scientific Reports1
Simulation Modelling Practice and Theory1
Tribology International1
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  • Article
    Citation - WoS: 9
    Citation - Scopus: 10
    Strain Engineering of Germanium Nanobeams by Electrostatic Actuation
    (Nature Portfolio, 2019) Ayan, Arman; Turkay, Deniz; Unlu, Buse; Naghinazhadahmadi, Parisa; Oliaei, Samad Nadimi Bavil; Boztug, Cicek; Yerci, Selcuk
    Germanium (Ge) is a promising material for the development of a light source compatible with the silicon microfabrication technology, even though it is an indirect-bandgap material in its bulk form. Among various techniques suggested to boost the light emission efficiency of Ge, the strain induction is capable of providing the wavelength tunability if the strain is applied via an external force. Here, we introduce a method to control the amount of the axial strain, and therefore the emission wavelength, on a suspended Ge nanobeam by an applied voltage. We demonstrate, based on mechanical and electrical simulations, that axial strains over 4% can be achieved without experiencing any mechanical and/or electrical failure. We also show that the non-uniform strain distribution on the Ge nanobeam as a result of the applied voltage enhances light emission over 6 folds as compared to a Ge nanobeam with a uniform strain distribution. We anticipate that electrostatic actuation of Ge nanobeams provides a suitable platform for the realization of the on-chip tunable-wavelength infrared light sources that can be monolithically integrated on Si chips.